Not very much progress today

This commit is contained in:
Marius Drechsler 2024-08-08 20:50:44 +02:00
parent 0ab044355e
commit 3f1c6e15a0
3 changed files with 20 additions and 13 deletions

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@ -12,6 +12,8 @@ Before we take a look at the higher order quantization cases, we will start with
#figure(
include("./../graphics/quantizers/bach/sign-based-overlay.typ"),
caption: [Nice graph]
)
caption: [1-bit quantizer with the PDF of a normal distribution]
)<fig:1-bit_normal>
If we overlay the PDF of a zero-mean Gaussian distributed variable $X$ with a sign-based quantizer function as shown in @fig:1-bit_normal, we can see that the expected value of the Gaussian distribution overlaps with the decision threshold of the sign-based quantizer.
Considering that the margin of error of the value $x$ is comparable with the one shown in @fig:tmhd_example_enroll, we can conclude that values of $X$

View file

@ -1,27 +1,32 @@
#import "@preview/cetz:0.2.2": *
#let ymax = 1/calc.sqrt(2*calc.pi)
#let line_style = (stroke: (paint: black, thickness: 2pt))
#let dashed = (stroke: (dash: "dashed"))
#canvas({
plot.plot(size: (8,4),
legend: "legend.north",
legend-style: (orientation: ltr, item: (spacing: 0.5)),
x-tick-step: none,
x-ticks: ((0, [0]), (100, [0])),
y-label: $cal(Q)(1, x)$,
y-label: $cal(Q)(1, x), xi(x)$,
x-label: $x$,
y-tick-step: 1,
y-tick-step: none,
y-ticks: ((0, [0]), (ymax, [1])),
axis-style: "left",
x-min: -3,
x-max: 3,
y-min: 0,
y-max: 1,{
plot.add(((-3,0), (0,0), (0,1), (3,1)), style: line_style)
plot.add(plot.sample-fn(
(x) => 1/calc.sqrt(2*calc.pi)*calc.exp(-(calc.pow(x,2)/2)),
(-3, 3),
300
))
y-max: ymax,{
plot.add(
plot.sample-fn(
(x) => 1/calc.sqrt(2*calc.pi)*calc.exp(-(calc.pow(x,2)/2)),
(-3, 3),
300),
style: (stroke: (paint: red, thickness: 2pt)),
label: [PDF of a normal distribution]
)
plot.add(((-3,0), (0,0), (0,ymax), (3,ymax)), style: line_style, label: [$cal(Q)(1,x)$])
})
})

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main.pdf

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