{ "paper_id": "2021", "header": { "generated_with": "S2ORC 1.0.0", "date_generated": "2023-01-19T07:12:11.937466Z" }, "title": "Unleashing annotations with TextAnnotator: Multimedia, multi-perspective document views for ubiquitous annotation", "authors": [ { "first": "Giuseppe", "middle": [], "last": "Abrami", "suffix": "", "affiliation": { "laboratory": "", "institution": "Goethe-University", "location": { "settlement": "Frankfurt" } }, "email": "abrami@em.uni-frankfurt.de" }, { "first": "Alexander", "middle": [], "last": "Henlein", "suffix": "", "affiliation": { "laboratory": "", "institution": "Goethe-University", "location": { "settlement": "Frankfurt" } }, "email": "henlein@em.uni-frankfurt.de" }, { "first": "Andy", "middle": [], "last": "Lcking", "suffix": "", "affiliation": { "laboratory": "", "institution": "Goethe-University", "location": { "settlement": "Frankfurt" } }, "email": "luecking@em.uni-frankfurt.de" }, { "first": "Attila", "middle": [], "last": "Kett", "suffix": "", "affiliation": { "laboratory": "", "institution": "Goethe-University", "location": { "settlement": "Frankfurt" } }, "email": "" }, { "first": "Pascal", "middle": [], "last": "Adeberg", "suffix": "", "affiliation": { "laboratory": "", "institution": "Goethe-University", "location": { "settlement": "Frankfurt" } }, "email": "" }, { "first": "Alexander", "middle": [], "last": "Mehler", "suffix": "", "affiliation": { "laboratory": "", "institution": "Goethe-University", "location": { "settlement": "Frankfurt" } }, "email": "mehler@em.uni-frankfurt.de" } ], "year": "", "venue": null, "identifiers": {}, "abstract": "We argue that mainly due to technical innovation in the landscape of annotation tools, a conceptual change in annotation models and processes is also on the horizon. It is diagnosed that these changes are bound up with multi-media and multi-perspective facilities of annotation tools, in particular when considering virtual reality (VR) and augmented reality (AR) applications, their potential ubiquitous use, and the exploitation of externally trained natural language pre-processing methods. Such developments potentially lead to a dynamic and exploratory heuristic construction of the annotation process. With TEX-TANNOTATOR an annotation suite is introduced which focuses on multi-mediality and multi-perspectivity with an interoperable set of task-specific annotation modules (e.g., for word classification, rhetorical structures, dependency trees, semantic roles, and more) and their linkage to VR and mobile implementations. The basic architecture and usage of TEXTANNOTATOR is described and related to the above mentioned shifts in the field.", "pdf_parse": { "paper_id": "2021", "_pdf_hash": "", "abstract": [ { "text": "We argue that mainly due to technical innovation in the landscape of annotation tools, a conceptual change in annotation models and processes is also on the horizon. It is diagnosed that these changes are bound up with multi-media and multi-perspective facilities of annotation tools, in particular when considering virtual reality (VR) and augmented reality (AR) applications, their potential ubiquitous use, and the exploitation of externally trained natural language pre-processing methods. Such developments potentially lead to a dynamic and exploratory heuristic construction of the annotation process. With TEX-TANNOTATOR an annotation suite is introduced which focuses on multi-mediality and multi-perspectivity with an interoperable set of task-specific annotation modules (e.g., for word classification, rhetorical structures, dependency trees, semantic roles, and more) and their linkage to VR and mobile implementations. The basic architecture and usage of TEXTANNOTATOR is described and related to the above mentioned shifts in the field.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Abstract", "sec_num": null } ], "body_text": [ { "text": "Annotation in and for computational linguistics (Gries and Berez, 2017) underwent technical and conceptual developments from XML-based annotation formats to integrated GATE (Cunningham et al., 2013) or UIMA (G\u00f6tz and Suhre, 2004) frameworks (Wilcock, 2017) . One reason for that development is that annotation (regardless of the annotated media such as texts, images, music, video, and so on) is bound to annotation tools, usually one annotation tool per annotation task or purpose (Cassidy and Schmidt, 2017; ). Annotation tools are themselves subject to (technical) development (see, for instance, the annotation of rhetorical relations (Helfrich et al., 2018) ). Furthermore, annotation is often part of a machine learning (ML) pipeline where machine learned applications are trained on annotated data (Rumshisky and Stubbs, 2017) , so that they can later perform annotations automatically on larger data sets. This is most explicitly expressed in the MATTER/MAMA annotation model (Pustejovsky and Stubbs, 2012) . In order to secure interoperability and data exchange in this dynamic landscape, annotations of linguistic phenomena (should) follow a standard (e.g. ISO, 2016) .", "cite_spans": [ { "start": 173, "end": 198, "text": "(Cunningham et al., 2013)", "ref_id": "BIBREF17" }, { "start": 207, "end": 229, "text": "(G\u00f6tz and Suhre, 2004)", "ref_id": "BIBREF23" }, { "start": 241, "end": 256, "text": "(Wilcock, 2017)", "ref_id": "BIBREF62" }, { "start": 482, "end": 509, "text": "(Cassidy and Schmidt, 2017;", "ref_id": "BIBREF10" }, { "start": 556, "end": 567, "text": "(technical)", "ref_id": null }, { "start": 639, "end": 662, "text": "(Helfrich et al., 2018)", "ref_id": "BIBREF26" }, { "start": 805, "end": 833, "text": "(Rumshisky and Stubbs, 2017)", "ref_id": "BIBREF54" }, { "start": 984, "end": 1014, "text": "(Pustejovsky and Stubbs, 2012)", "ref_id": "BIBREF53" }, { "start": 1167, "end": 1177, "text": "ISO, 2016)", "ref_id": "BIBREF34" } ], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "As has been observed by Finlayson and Erjavec (2017), there are still features that are missing or only seldomly addressed in annotation tools. So further developments are here to be expected.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "However, we argue that another technical and conceptual change takes place, a change that is characterised by the following, partly mutually influencing, features.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "Multi-Mediality and -Perspectivity. An annotation tool trivially is a medium (for annotation). Now, as is known, for instance, from readability research, the \"physical\" properties of the medium text influence text processing: no readability difference between serif and sans serif font types has been observed (Ali et al., 2013) , but they seem to differ with respect to information recall (Gasser et al., 2005) . Likewise, the choice of document preparation system has an effect on the efficiency and satisfaction of the document preparer (Knauff and Nejasmic, 2015) . Transferred to annotation tools, such findings evince that users may produce different results with different annotation media. Taking advantage of this effect, annotation tools should offer multiple views on the same data: an attribute called Multi-Perspectivity and realized by the tool's Multi-Mediality. Multi-Mediality and -Perspectivity can be realized in various ways, ranging from low-level customizable display properties to high-level exploratory means of inspecting a certain kind of data with tools/views that are developed for different data types. We conjecture both heuristic and error-reducing gains by multi-media, multi-perspective methods.", "cite_spans": [ { "start": 310, "end": 328, "text": "(Ali et al., 2013)", "ref_id": "BIBREF6" }, { "start": 390, "end": 411, "text": "(Gasser et al., 2005)", "ref_id": "BIBREF21" }, { "start": 540, "end": 567, "text": "(Knauff and Nejasmic, 2015)", "ref_id": "BIBREF39" } ], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "Note that multi-perspectivity is different from multimodal annotation as carried out by using video (hence the attribute 'multimodal') annotation tools such as ANVIL (Kipp, 2014) or ELAN (Wittenburg et al., 2006) : while multimodality tools allow the analysis of visually recorded communication settings, multi-perspectivity tools render the same input data in various formats.", "cite_spans": [ { "start": 166, "end": 178, "text": "(Kipp, 2014)", "ref_id": "BIBREF38" }, { "start": 187, "end": 212, "text": "(Wittenburg et al., 2006)", "ref_id": "BIBREF64" } ], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "VR and AR annotations. Multi-Mediality comprises virtual reality (VR) and augmented reality (AR) as special cases. So the claims made in the previous paragraph apply here, too. However, annotating in VR or AR has some obvious repercussions on human-computer interaction (HCI, where \"computer\" stands for the annotation tool used). Most notably, classic HCI interfaces such as a computer mouse are replaced by locomotion or (virtual) manipulation. Again, a heuristic effect is to be conjectured, but such \"immersive annotation settings\" have still to be explored. A consequence is already visible, however, namely that the range of annotation objects is extended: real-world objects (AR) and the annotators' actions (VR) become potential subjects of annotations. The former is, for instance, needed in geospatial information systems (cf. Sec. 2); the latter can be used to label professional actions as learned, for instance, in virtual nurse education (Plotzky et al., 2021) . We also note that VR systems are still quite new in the computational linguistics community. However, as such systems spread to all areas of human communication, people will become accustomed to their use, and the current gap between the use of traditional systems and VR will naturally disappear.", "cite_spans": [ { "start": 952, "end": 974, "text": "(Plotzky et al., 2021)", "ref_id": "BIBREF50" } ], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "Ubiquity. Porting annotation software to mobile phones cuts any locational constraints on annotators (given a sufficient internet infrastructure). Mobile annotation probably unfold their potential when embedded into games with a purpose (von Ahn, 2006) : annotators produce annotations \"for fun\" and en passant, when, say, being on a travel. Mobile annotations combines with AR annotations, leading to a qualitative (not just quantitative) change in the units of annotation.", "cite_spans": [ { "start": 237, "end": 252, "text": "(von Ahn, 2006)", "ref_id": "BIBREF5" } ], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "ML for annotation (or: human-in-the-loop). The predominant annotation model conceives annotation as a means for providing data for machine learning. And annotations will surely continue to be produced and used in this way. However, the current computational annotation landscape also treads the opposing path: pre-trained ML tools are used for automatic (large-scale) annotation of documents which are then corrected by human annotators (de Castilho et al., 2019; Hemati et al., 2016) . Accordingly, the role of human annotators changes from \"mere\" data-generators (Consten and Loll, 2012) or \"two-legged meters\" (Cohen, 1960) to \"humans-in-the-loop\" (Wagner, 2016) (i.e., a post-editing phase is interspersed at some point into the ML process, a.k.a active learning, Cohn et al., 1994; Settles, 2012) .", "cite_spans": [ { "start": 437, "end": 463, "text": "(de Castilho et al., 2019;", "ref_id": "BIBREF12" }, { "start": 464, "end": 484, "text": "Hemati et al., 2016)", "ref_id": "BIBREF27" }, { "start": 565, "end": 589, "text": "(Consten and Loll, 2012)", "ref_id": "BIBREF16" }, { "start": 613, "end": 626, "text": "(Cohen, 1960)", "ref_id": "BIBREF14" }, { "start": 768, "end": 786, "text": "Cohn et al., 1994;", "ref_id": "BIBREF15" }, { "start": 787, "end": 801, "text": "Settles, 2012)", "ref_id": null } ], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "Dynamics of annotation processes. It is wellknown that due to an interplay of theoretical knowledge and data structure of annotation units, (linguistic) annotations exhibit a \"circular\" trait (Consten and Loll, 2012) -this is also reflected in the iterative design of the MAMA cycle (Pustejovsky and Stubbs, 2012) . Annotation manuals and especially standardizations like the Semantic Annotation Framework (SemAF) (ISO, 2016) are means for taming this process. In fact, however, in particular the Multi-Mediality and -Perspectivity fosters the circularity of annotation processes since viewing one document from different viewpoints is a heuristic activity (cf. \"Multi-Modality and -Perspectivity\"). There are two consequences of this situation: Firstly, the dynamic nature of annotations is emphasized. This includes to construe annotations as parts of sequences of annotations instead of as singular tasks (cf. the argument from circularity, triggered by the mutual theoretical preconception and the actual structure of annotation data) -regardless of whether the encompassing sequence tasks are actually carried out. In other words: in designing an annotation task both (implicitly) presupposed and (potential) follow-up annotations have to be kept in mind. This is already partly reflected, for instance, in the plug-ins approach to dialogue act annotation (Bunt, 2019) .", "cite_spans": [ { "start": 283, "end": 313, "text": "(Pustejovsky and Stubbs, 2012)", "ref_id": "BIBREF53" }, { "start": 1361, "end": 1373, "text": "(Bunt, 2019)", "ref_id": "BIBREF9" } ], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "Secondly, even dynamic annotation processes cannot afford to ignore achieved standards. On the one hand, multi-media and multi-perspective annotation tools support established schemes and ontologies. On the other hand, best practices and process standards will emerge from dynamic annotation processes.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "Interim conclusion We anticipate a potential shift in thinking of and carrying out annotations, as indicated in the \"Dynamics of annotation processes. This shift is driven by technological achievements mainly in the domain of VR/AR, extended pre-processing, and ubiquitous computing.\" Preliminary (i.e., as long as a corresponding full-blown annotation model has been developed) we refer to a system that exhibits the envisaged facilities as MUVAMP (Multi-Mediality and -Perspectivity, Ubiquity, VR/AR, ML, Processorientedness). Given that this is a preliminary characterization, it is obvious that no current annotation system fulfils MUVAMP. However, to making the envisaged shift happen, a precondition seems to be an annotation tool that hosts several modules (otherwise it remains unclear how multi-perspectivity is achieved). In the following we introduce TEXTAN-NOTATOR as a MUVAMP-oriented annotation suite for unleashing annotations along the above lines. After reviewing related approaches, we present TEXTANNOTATOR module-wise and indicate each module's role for MUVAMP.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Motivation", "sec_num": "1" }, { "text": "There are applications around that address some of the features outlined above. We are aware of the following ones:", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Related Work", "sec_num": "2" }, { "text": "\u2022 Incorporating machine learning applications into the annotation pipeline is carried out in INCEpTION (de Castilho et al., 2019) (which extends on WebAnno (Eckart de Castilho et al., 2016)), the commercial service prodi.gy (Montani and Honnibal, 2018) and the TEXTIM-AGER (Hemati et al., 2016 ) (the latter also underlies the present work). \u2022 Annotation in virtual reality is implemented by means of a note taking facility in (industrial) VR environments (Clergeaud and Guitton, 2017) . VR visualisations have also been used in the study of multimodal referring expressions (Pfeiffer, 2012) . In Wither et al. (2009) , an annotation taxonomy and a prototype study on outdoor augmented reality annotation is developed.", "cite_spans": [ { "start": 273, "end": 293, "text": "(Hemati et al., 2016", "ref_id": "BIBREF27" }, { "start": 456, "end": 485, "text": "(Clergeaud and Guitton, 2017)", "ref_id": "BIBREF13" }, { "start": 575, "end": 591, "text": "(Pfeiffer, 2012)", "ref_id": "BIBREF49" }, { "start": 597, "end": 617, "text": "Wither et al. (2009)", "ref_id": "BIBREF63" } ], "ref_spans": [], "eq_spans": [], "section": "Related Work", "sec_num": "2" }, { "text": "\u2022 Mobile annotation of geospatial information is made available in MobiTOP (HoeLian Goh et al., 2012) . The mobile annotation of images, e.g. for social media uses, is enabled by Anguera et al. (2008) .", "cite_spans": [ { "start": 84, "end": 101, "text": "Goh et al., 2012)", "ref_id": "BIBREF30" }, { "start": 179, "end": 200, "text": "Anguera et al. (2008)", "ref_id": "BIBREF7" } ], "ref_spans": [], "eq_spans": [], "section": "Related Work", "sec_num": "2" }, { "text": "TEXTANNOTATOR is a suitable candidate as a multimedia and multimodal annotation environment for UIMA documents (G\u00f6tz and Suhre, 2004) . The UIMA-based annotations are driven by the TEX-TANNOTATOR as a RESTfull application developed in Java. Documents which are not available in UIMA can be transferred into this format by using TEXTIMAGER (Hemati et al., 2016) , which provides a rich machine learning backend for automatic annotation accouting for the 'ML' component of MUVAMP. The UIMA documents are stored through the UIMADatabaseInterface within MongoDB 1 and can be used simultaneously and collaboratively through TEX-TANNOTATOR. Collaborativity and simultaneity are enabled with bidirectional information exchange via web-socket between TEXTANNOTATOR and all client systems and is an important component for ubiquitous use. In addition, the web-socket allows other annotation tools to be connected to TEXTANNOTATOR, to ensure its multimedia nature (see Sec. 4 and 5). The connection between TEX-TANNOTATOR and its client systems is illustrated in Fig. 2 . Annotations stored in UIMA documents are organized in different annotation views (AV). Each of these views contains different annotations and is related to a specific topic or user. For each annotator, a user view is created when a document is initially opened, which duplicates the original annotations. Thus, each AV shows a different perspective, state, or context on the same document. Furthermore, the different AVs allow the computation of inter-annotator agreement, which enables to assess the consistency of annotations in a project (Krippendorff, 2018) , based on user permissions. In addition, all annotations can be used independently of TEXTANNOTATOR: they can be completely downloaded for further processing. The reuse of the annotations as a basis for ML is thus customizable, depending on the needs of the particular application. In the following, we show how TEXTANNOTATOR accounts for Multi-Mediality and -Perspectivity, Dynamics of annotation pro-cesses, and ML for annotation. VR and AR, and Ubiquitous use are dealt with in Sec. 4 and 5, respectively.", "cite_spans": [ { "start": 111, "end": 133, "text": "(G\u00f6tz and Suhre, 2004)", "ref_id": "BIBREF23" }, { "start": 339, "end": 360, "text": "(Hemati et al., 2016)", "ref_id": "BIBREF27" }, { "start": 1603, "end": 1623, "text": "(Krippendorff, 2018)", "ref_id": "BIBREF40" } ], "ref_spans": [ { "start": 1053, "end": 1059, "text": "Fig. 2", "ref_id": null } ], "eq_spans": [], "section": "TextAnnotator", "sec_num": "3" }, { "text": "QuickAnnotator still allows rapid annotation of named entities and words and multi-token expression in general through a simple selection of a target class and subsequent assignment when clicking on tokens (Abrami et al., 2019) . To increase annotation performance, a recommendation function was implemented that allows the selected target class, based on the token's lemma, to be applied to all other tokens of the same lemma in the same document, paragraph, or current sentence. In addition, all tokens annotated by this function are marked so that annotators can easily target and post-process them.", "cite_spans": [ { "start": 206, "end": 227, "text": "(Abrami et al., 2019)", "ref_id": "BIBREF2" } ], "ref_spans": [], "eq_spans": [], "section": "TextAnnotator", "sec_num": "3" }, { "text": "Another function is the combination of tokens to multitokens: By now this function has been extended with the possibility to separate tokens at any position as well as the capability to correct OCR errors (see Fig. 1 ). This user-friendly function, which can also be executed via drag & drop, enables the correction of incorrectly recognized token boundaries which is a frequent and popular error, especially in the context of OCR recognition of texts.", "cite_spans": [], "ref_spans": [ { "start": 210, "end": 216, "text": "Fig. 1", "ref_id": null } ], "eq_spans": [], "section": "TextAnnotator", "sec_num": "3" }, { "text": "As it provides basic corrections to the texts and establishes the prerequisites for future annotation processes, QUICKANNOTATOR develops into a preediting tool which is employed before the main annotation work is done with more specific tools such as PROPANNOTATOR or DEPANNOTATOR. Hence, the triplet of QUICKANNOTATOR, PROPANNO-TATOR, and DEPANNOTATOR gives rise to multi- Figure 1 : Tokens can be corrected as required. Firstly, incorrect token boundaries can be split using a simple key combination. In the present example this was done with the token merged with the comma (green border). Secondly, OCR errors can be corrected in QUICKAN-NOTATOR by clicking on the corresponding tokens. In this way the original text is not changed, but a correction token is generated, which is placed on top of the affected tokens. A corrected token is visualized with a green dot in the upper right corner. By moving the cursor over it, the original token is shown. perspectivity (in particular if annotation files are preprocessed in such a way that they contain annotation layers according to the corresponding tools' specification).", "cite_spans": [], "ref_spans": [ { "start": 374, "end": 382, "text": "Figure 1", "ref_id": null } ], "eq_spans": [], "section": "TextAnnotator", "sec_num": "3" }, { "text": "PropAnnotator uses relations adopted from the SemAF standard (ISO, 2014a) as well as from Prop-Bank (Palmer et al., 2005 ) (the latter can be mapped onto the former (Ide et al., 2017, 133) ). To this end, we converted the structures defined in these standards into a UIMA type system 2 . Since the last presentation of PROPANNOTATOR in Abrami et al. (2019) , significant improvements and new features have been implemented. The underlying data model allows for annotating a wide range of relations a subset of which is available in the current web interface of PROPANNOTATOR:", "cite_spans": [ { "start": 100, "end": 120, "text": "(Palmer et al., 2005", "ref_id": "BIBREF48" }, { "start": 165, "end": 188, "text": "(Ide et al., 2017, 133)", "ref_id": null }, { "start": 336, "end": 356, "text": "Abrami et al. (2019)", "ref_id": "BIBREF2" } ], "ref_spans": [], "eq_spans": [], "section": "TextAnnotator", "sec_num": "3" }, { "text": "\u2022 Argument and modifier relations (following PropBank); \u2022 Time relations (temporal entities and TLinks from ISOTimeML (Pustejovsky, 2017 ; ISO, 2012)); \u2022 Spatial-Relations (Qualitative Spatial Links (QSLinks) from ISOSpace (Pustejovsky et al., 2011 ; ISO, 2020a)); \u2022 A few custom extensions (for example, labeling idiomatic expressions and separated verb particles in German). These relations are used in order to carry out semantic role labeling. Regarding semantic role labeling, the annotation of functional roles (argument and modifier relations) depends on the sense of the verb heading the corresponding sentence (Levin, 1993) . In support of this view, PROPANNOTATOR complements semantic role annotation with verb sense annotation. Verb senses are distinguished according to PropBank's frameset lexicon 3 , Ger-maNet (Hamp and Feldweg, 1997; Henrich and Hinrichs, 2010) as well as -for evaluation purposes -E-Valbu (Schumacher et al., 2004) . The cross-language mixture of sense inventories is due the fact that the main language of actual annotation documents is German, but the majority of (large-scale) resource has been developed in and for English. Hence, PROPANNOTATOR provides an annotation-based mapping between English and German verb sense. Since this mapping involves translation issues, the small but hand-crafted verb Figure 2 : Illustration of the interrelationships and communication routes between the individual infrastructures. In the lower area the domain of TEXTIMAGER (Hemati et al., 2016) is shown, a multi-server system for automatic preprocessing of textual data based on UIMA. Several pipelines, each for different analyses, can be used to process the texts for use by TEXTANNOTATOR. Texts must exist in UIMA format in order to use these within the infrastructures. The upper architectures show the individual tools which are also considered in this paper in more detail. This simplified presentation shows the relationship between the tools, which all use TEXTANNOTATOR as a core service. The different annotation environments, MOBILEANNOTATOR, TEXTANNOTATOR and VANNOTATOR, are located in the upper area. Being the center of all manual annotation processes, TEXTANNOTATOR enables the use of TEXTIMAGER and thus to automatize parts of the annotation process. Each tool is directly or indirectly connected to the ResourceManager and AuthorityManager (Gleim et al., 2012) in order to manage the annotation of documents. All documents managed in ResourceManager are database objects manageable by the UIMA database interface. This usage takes place entirely within TEXTANNOTATOR. All tools that want to perform or use UIMAbased annotations are connected to TEXTANNOTATOR in order to subsequently use all implemented functions. Calamari, shown in the bottom region, is a Blazegraph (https://blazegraph.com/) implementation (still under development) for maintaining various ontologies within the TEXTANNOTATOR/TEXTIMAGER infrastructure. sense inventory of E-Valbu is built-in as a ground truth standard of comparison.", "cite_spans": [ { "start": 118, "end": 136, "text": "(Pustejovsky, 2017", "ref_id": "BIBREF51" }, { "start": 223, "end": 248, "text": "(Pustejovsky et al., 2011", "ref_id": "BIBREF52" }, { "start": 619, "end": 632, "text": "(Levin, 1993)", "ref_id": "BIBREF42" }, { "start": 824, "end": 848, "text": "(Hamp and Feldweg, 1997;", "ref_id": "BIBREF25" }, { "start": 849, "end": 876, "text": "Henrich and Hinrichs, 2010)", "ref_id": "BIBREF29" }, { "start": 922, "end": 947, "text": "(Schumacher et al., 2004)", "ref_id": null }, { "start": 1496, "end": 1517, "text": "(Hemati et al., 2016)", "ref_id": "BIBREF27" }, { "start": 2382, "end": 2402, "text": "(Gleim et al., 2012)", "ref_id": "BIBREF22" } ], "ref_spans": [ { "start": 1338, "end": 1346, "text": "Figure 2", "ref_id": null } ], "eq_spans": [], "section": "TextAnnotator", "sec_num": "3" }, { "text": "DepAnnotator is the newest tool designed for visualization and annotation of dependency structures in texts. Based on different dependency tag sets (derived from TIGER (Brants et al., 2004) , respectively NEGRA (Skut et al., 1997) , and Universal Dependencies (de Marneffe et al., 2014)) existing dependencies can be deleted and new ones can be created. In addition, as with all tools, it is also possible to manually annotate texts without pre-annotated dependency information, which is illustrated in Fig. 4 .", "cite_spans": [ { "start": 168, "end": 189, "text": "(Brants et al., 2004)", "ref_id": "BIBREF8" }, { "start": 211, "end": 230, "text": "(Skut et al., 1997)", "ref_id": "BIBREF57" } ], "ref_spans": [ { "start": 503, "end": 509, "text": "Fig. 4", "ref_id": null } ], "eq_spans": [], "section": "TextAnnotator", "sec_num": "3" }, { "text": "To remove the binding of the annotation situation to desktop sessions, so to speak, to enable annotations in mobile contexts, quasi ubiquitously (whether in sitting, standing or walking Figure 3 : Visualization of PROPANNOTATOR: On the left side, the sentences of the document are displayed, which can be transferred to the middle annotation area by a click. Each sentence can be assigned with a status, which documents the annotation progress: green indicates completed sentences and yellow indicates problems, which is helpful both for later evaluation and for interrupting the process. The panel on the right side shows the annotation options. The upper part of these options shows a set of relations that can also be selected by a click. Below this is a list of annotated semantic senses, which is only enabled when an event is selected. In the center of PROPANNOTATOR's interface the annotation environment is shown by visualizing the selected sentence (left) token-wise. Similar to QUICKANNOTATOR, multitokens can be created and tokens can be separated via drag & drop. Under each token, its part of speech is displayed; clicking on a verb turns it into an \"event\", which can then be sense-disambiguated. Tokens can be linked semantically by drag & drop, based on the selection of a corresponding relation in the options panel (right). Colors are used to distinguish between different relation types.", "cite_spans": [], "ref_spans": [ { "start": 186, "end": 194, "text": "Figure 3", "ref_id": null } ], "eq_spans": [], "section": "MobileAnnotator", "sec_num": "4" }, { "text": "position of the annotator), we have developed MO-BILEANNOTATOR (Adeberg, 2020). Based on Angular 4 , we adapted two tools of TEXTANNO-TATOR (QUICKANNOTATOR and KNOWLEDGE-BASELINKER) to enable mobile access. MO-BILEANNOTATOR was developed as a TEXTAN-NOTATOR client (see Fig. 2 ) using its functionality. This allows the implementation of additional functions which are not available in the browserbased version. At the same time, documents are still accessible only after user authentication and all annotations are stored in MOBILEANNOTATOR in appropriate annotation views. The the control and use of UIMA documents is thus analogous to TEXTANNOTATOR. To motivate it with concrete examples: with MOBILEANNOTATOR, train rides, waiting time at the doctor's office, at the bus stop, or anywhere else can be used for annotation tasks. Mobile annotations, of course, attain ubiquity.", "cite_spans": [], "ref_spans": [ { "start": 270, "end": 276, "text": "Fig. 2", "ref_id": null } ], "eq_spans": [], "section": "MobileAnnotator", "sec_num": "4" }, { "text": "VR-based annotation is provided by VANNO-TATOR, a UIMA-based annotation environment implemented in Unity3D 5 . Since VANNOTA-TOR is also based on 4 https://angular.io/ 5 https://unity.com/ TEXTANNOTATOR (see Fig 2) , its annotations can be further processed with any other annotation media of TEXTANNOTATOR.", "cite_spans": [], "ref_spans": [ { "start": 208, "end": 214, "text": "Fig 2)", "ref_id": null } ], "eq_spans": [], "section": "VAnnotatoR", "sec_num": "5" }, { "text": "VANNOTATOR addresses a range of scenarios: visualization and interaction with historical information (Abrami et al., 2020b) , annotation of texts, their interlinking with images and 3D objects, and the creation of 3D spaces enriched with hypertext functionalities Abrami et al., 2020a) .", "cite_spans": [ { "start": 101, "end": 123, "text": "(Abrami et al., 2020b)", "ref_id": "BIBREF3" }, { "start": 264, "end": 285, "text": "Abrami et al., 2020a)", "ref_id": "BIBREF0" } ], "ref_spans": [], "eq_spans": [], "section": "VAnnotatoR", "sec_num": "5" }, { "text": "VANNOTATOR is currently extended to include SemAF-related functionalities. A pilot study of this extension is presented in (Henlein et al., 2020) . The main focus is on the annotation of spatial relations (IsoSpace, Pustejovsky et al., 2011; ISO, 2020b) , semantic roles (SrLinks, ISO, 2014a) and coreference relations (MetaLinks, ISO, 2014b) . This is done to generate text-to-scene data, which in turn is used to train ML systems. Fig. 6 exemplifies this sort of annotation data. In this example, we take advantage of the spatial capabilities of VR to automate as many spatial annotations as possible. That is, whenever the annotator arranges objects in virtual space based on their description in the underlying text, a subset of the relationships of the objects implied by this arrangement is explicitly annotated by the system itself. This concerns objects that are implicitly or explicitly involved in Figure 4 : The interface of DEPANNOTATOR is similar to that of PROPANNOTATOR. On the left one finds the sentences to be annotated (together with their annotation status). The panel on the right displays selectable options subdivided into tagsets. Two visualizations of the focal sentence are displayed in the center of the window: the lower sentence shows the dependency tree created by the parser selected in TEXTIMAGER; the upper sentence shows its correction. Green lines encode selected dependency relations created by the human annotator. With DEPANNOTATOR it is possible to visually compare automatically created dependency trees and their corrections. DEPANNOTATOR additionally contains statistics for automatic comparison of such trees. this description. In addition to placing entities in virtual space, the annotators' movements and gestures could be used in the future for this purpose. In a nutshell, VANNOTATOR meets the MUVAMP requirement for using VR and AR for the purpose of multimedia and multi-perspective annotation.", "cite_spans": [ { "start": 123, "end": 145, "text": "(Henlein et al., 2020)", "ref_id": "BIBREF28" }, { "start": 216, "end": 241, "text": "Pustejovsky et al., 2011;", "ref_id": "BIBREF52" }, { "start": 242, "end": 253, "text": "ISO, 2020b)", "ref_id": null }, { "start": 319, "end": 342, "text": "(MetaLinks, ISO, 2014b)", "ref_id": null } ], "ref_spans": [ { "start": 433, "end": 439, "text": "Fig. 6", "ref_id": null }, { "start": 908, "end": 916, "text": "Figure 4", "ref_id": null } ], "eq_spans": [], "section": "VAnnotatoR", "sec_num": "5" }, { "text": "The tools described so far are being used in various lectures and qualification work (e.g. K\u00fchn (2018); Smaji 2020; Kett (2020); L\u00f6\u00f6ck (2020)) to automatically validate annotated documents (human in the loop) or to gain new perspectives on annotated documents. In particular, TEXTANNOTATOR is used as a browser-based suite for the correction of automatic annotations generated with TEXTIM-AGER.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Application usage", "sec_num": "6" }, { "text": "In addition, TEXTANNOTATOR is used in the biodiversity project BioFID (Driller et al., 2020) . This project is concerned with the semantic indexing of historical biodiversity texts. For this purpose, TEXTANNOTATOR is used to annotate texts in order to perform various linguistic analyses. Within the BioFID project, 79,813 \"net\" annotations 6 have been produced using QUICKANNOTATOR (L\u00fccking et al., 2021) . \"Net\" means the following: since within BIOfid documents are annotated by more than one annotator for the sake of assessing interrater agreement, one and the same annotation unit may receive a label repeatedly but from different annotators. The net count ignores such reduplications and only takes unique labels into account.", "cite_spans": [ { "start": 70, "end": 92, "text": "(Driller et al., 2020)", "ref_id": "BIBREF19" }, { "start": 383, "end": 405, "text": "(L\u00fccking et al., 2021)", "ref_id": "BIBREF44" } ], "ref_spans": [], "eq_spans": [], "section": "Application usage", "sec_num": "6" }, { "text": "These numbers show that many annotations can be performed by different users in a very short time (for a user evaluation of one of TEXTANNOTA-TOR's modules, TREEANNOTATOR, see Helfrich et al., 2018, Sec. 3) . At the same time, all annotations are available in a uniform and portable format, which ultimately simplifies external processing and reuse, e.g., for ML tasks.", "cite_spans": [ { "start": 176, "end": 206, "text": "Helfrich et al., 2018, Sec. 3)", "ref_id": null } ], "ref_spans": [], "eq_spans": [], "section": "Application usage", "sec_num": "6" }, { "text": "The combination of a large number of different annotation functions (at the word, sentence, or text Figure 6 : Annotation example for the sentence: He took the keys from the table and went to his car. Left: VR view; Right: Rendering-View. In the VR annotation view one can see in yellow the Qualitative Spatial Links (QSLinks) and in red the Orientation Links (OLinks). The QSLinks and OLinks are mostly generated automatically. The thick gray line in both views represents the EventPath (here: key in hand, person to car). level) that provide multiple annotation perspectives on the same text, as well as the multimedia bandwidth that comes with them, is, to our knowledge, currently unique in the field of annotation of natural language texts.", "cite_spans": [], "ref_spans": [ { "start": 100, "end": 108, "text": "Figure 6", "ref_id": null } ], "eq_spans": [], "section": "Application usage", "sec_num": "6" }, { "text": "Currently, not all annotation features available through TEXTANNOTATOR can be used by downstream tools (e.g. MOBILEANNOTATOR). To enable full ubiquitous use, different approaches for the different media (VR, AR, mobile devices) are required. In particular, we will consider the possibilities and limitations of AR systems and the extent to which they can be used for annotation purposes. While the available hardware is still very limited (price, availability, technical features, . . . ), in the near future it will become available to the general public, similar to VR. Furthermore, in addition to the extension of VANNOTATOR's RoomBuilder according to the SemAF standards, an annotation environment for TEXTANNOTATOR and MOBILEANNOTATOR is planned. This extension should make it possible to pre-annotate texts at home, in the office, or on the road, to largely complete their annotation in VR -also with regard to implied annotations -and to correct and refine the results later with conventional 2D interfaces if necessary. Insofar as these annotations refer to artifacts that are visible or even traversable in reality (e.g. streets, houses, squares), this multimedia annotation process can be significantly enriched by AR functionalities, since the direct view of the objects to be annotated can compensate for inadequacies of their representation in VR.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Future Work", "sec_num": "7" }, { "text": "Thanks to the large number of tools in TEXTAN-NOTATOR, a wide range of annotation tasks can be addressed. However, since it is inefficient in the long run to develop tools with reference to specific annotation requirements, a more dynamic approach that simplifies the planning of annotation projects suggests itself. To meet this requirement, TEXTAN-NOTATOR is being further developed as a tool for modeling annotation models and corresponding annotation tools. Furthermore, it is planned to publish TEXTANNOTATOR via GitHub.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Future Work", "sec_num": "7" }, { "text": "We introduced the concept of MUVAMP (Multimediality and -perspectivity, Ubiquity, VR/AR, ML, Process-orientation) and argued how TEXTANNOTATOR and the annotation tools around it meet this concept. Reflecting on and studying MUVAMP, and devising corresponding annotation models is still a desideratum for computational linguistics. The increasing complexity of annotation tasks and their representation in tools in order to be able to use them collaboratively and simultaneously in a homogeneous annotation environment at best.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Conclusion", "sec_num": "8" }, { "text": "In addition, enabling annotators to use multi-perspective multimedia annotation tools is an area where established best practices do not yet exist. In order to contribute to this research perspective, we have presented the latest developments of TEXTANNOTATOR and outlined future development steps.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Conclusion", "sec_num": "8" }, { "text": "In conclusion, it is our strong interest to discuss and also establish with the research community a new and more innovative way in the implementation of annotation processes. For this purpose, not only concepts and procedures are necessary, but also adequate and flexible software solutionssuch as TEXTANNOTATOR.", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "Conclusion", "sec_num": "8" }, { "text": "https://www.mongodb.com/", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "", "sec_num": null }, { "text": "https://github.com/texttechnologylab/ UIMATypeSystem 3 http://verbs.colorado.edu/propbank/ framesets-english-aliases/", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "", "sec_num": null }, { "text": "as of 27th October 2020", "cite_spans": [], "ref_spans": [], "eq_spans": [], "section": "", "sec_num": null } ], "back_matter": [], "bib_entries": { "BIBREF0": { "ref_id": "b0", "title": "Text2SceneVR: Generating hypertexts with vannotator as a pre-processing step for text2scene systems", "authors": [ { "first": "Giuseppe", "middle": [], "last": "Abrami", "suffix": "" }, { "first": "Alexander", "middle": [], "last": "Henlein", "suffix": "" }, { "first": "Attila", "middle": [], "last": "Kett", "suffix": "" }, { "first": "Alexander", "middle": [], "last": "Mehler", "suffix": "" } ], "year": 2020, "venue": "Proceedings of the 31st ACM Conference on Hypertext and Social Media, HT '20", "volume": "", "issue": "", "pages": "", "other_ids": { "DOI": [ "10.1145/3372923.3404791" ] }, "num": null, "urls": [], "raw_text": "Giuseppe Abrami, Alexander Henlein, Attila Kett, and Alexander Mehler. 2020a. 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