justheuristic commited on
Commit
65b73be
1 Parent(s): 19a10bd

undo bokeh

Browse files
Files changed (2) hide show
  1. app.py +0 -29
  2. requirements.txt +1 -2
app.py CHANGED
@@ -16,35 +16,6 @@ st.markdown("## Full demo content will be posted here on December 7th!")
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  make_header()
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-
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- from bokeh.layouts import column
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- from bokeh.models import ColumnDataSource, CustomJS, Slider
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- from bokeh.plotting import Figure, output_file, show
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- x = [x*0.005 for x in range(0, 200)]
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- y = x
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- source = ColumnDataSource(data=dict(x=x, y=y))
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-
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- plot = Figure(width=400, height=400)
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- plot.line('x', 'y', source=source, line_width=3, line_alpha=0.6)
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-
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- callback = CustomJS(args=dict(source=source), code="""
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- const data = source.data;
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- const f = cb_obj.value
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- const x = data['x']
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- const y = data['y']
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- for (let i = 0; i < x.length; i++) {
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- y[i] = Math.pow(x[i], f)
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- }
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- source.change.emit();
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- alert("123");
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- """)
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-
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- slider = Slider(start=0.1, end=4, value=1, step=.1, title="power")
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- slider.js_on_change('value', callback)
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-
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- layout = column(slider, plot)
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- st.bokeh_chart(layout)
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-
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  content_text(f"""
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  There was a time when you could comfortably train SoTA vision and language models at home on your workstation.
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  The first ConvNet to beat ImageNet took in 5-6 days on two gamer-grade GPUs{cite("alexnet")}. Today's top-1 imagenet model
 
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  make_header()
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  content_text(f"""
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  There was a time when you could comfortably train SoTA vision and language models at home on your workstation.
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  The first ConvNet to beat ImageNet took in 5-6 days on two gamer-grade GPUs{cite("alexnet")}. Today's top-1 imagenet model
requirements.txt CHANGED
@@ -1,4 +1,3 @@
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  streamlit
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  wandb
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- requests_futures
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- bokeh==2.4.1
 
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  streamlit
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  wandb
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+ requests_futures