Created
January 7, 2021 20:43
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plotting attention weights with bokeh #attention #bokeh
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from bokeh.plotting import figure, output_file, save | |
from bokeh.palettes import Blues256 | |
from bokeh.io import export_png | |
def plot_att(src, tgt, weights, out_filepath): | |
""" | |
Plot attention using Bokeh. | |
Output is a 2D matrix with x-axis=src, y-axis=tgt. | |
Each cell = attention weight between corresponding src | |
and tgt words. | |
Parameters: | |
src (list): list of src words | |
tgt (list): list of tgt words | |
weights (np.ndarray): 2D np array of shape [len(tgt), len(src)] | |
Returns: | |
Save the visualization in png | |
and html format (great for interactive visualization). | |
""" | |
# small->large value = white->blue | |
colormap = Blues256[::-1] | |
# flip tgt to display tgt words from top to bottom | |
tgt = tgt[::-1] | |
np.flip(weights, axis=0) | |
x_range = list(range(len(src))) | |
y_range = list(range(len(tgt))) | |
xs = [] | |
ys = [] | |
colors = [] | |
xtoks = [] | |
ytoks = [] | |
# or we could just flatten weights | |
att_weights = [] | |
for x, src_tok in enumerate(src): | |
for y, tgt_tok in enumerate(tgt): | |
xs.append(x) | |
ys.append(y) | |
color_idx = int(weights[y][x] * 256) % 256 | |
att_weights.append(weights[y][x]) | |
colors.append(colormap[color_idx]) | |
xtoks.append(src_tok) | |
ytoks.append(tgt_tok) | |
data = dict( | |
xs=xs, | |
ys=ys, | |
colors=colors, | |
att_weights=att_weights, | |
xtoks=xtoks, | |
ytoks=ytoks | |
) | |
p = figure( | |
x_axis_location='above', | |
tools='hover,save', | |
tooltips=[('pair', '@ytoks, @xtoks'), ('weight', '@att_weights')]) | |
# override numbers with text | |
p.xaxis.ticker = x_range | |
p.xaxis.major_label_overrides = {idx: tok for (idx, tok) in zip(x_range, src)} | |
p.yaxis.ticker = y_range | |
p.yaxis.major_label_overrides = {idx: tok for (idx, tok) in zip(y_range, tgt)} | |
p.plot_width = 800 | |
p.plot_height = 800 | |
p.grid.grid_line_color = None | |
p.axis.axis_line_color = None | |
p.axis.major_tick_line_color = None | |
# p.axis.major_label_text_font_size = "10px" | |
p.axis.major_label_standoff = 0 | |
p.xaxis.major_label_orientation = np.pi/3 | |
p.rect('xs', 'ys', 1.0, 1.0, color='colors', source=data, line_color=None, hover_line_color='black', hover_color='colors') | |
output_file(out_filepath + '.html') | |
save(p) | |
export_png(p, out_filepath + '.png') |
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