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Duplicate from fr1ll/wb-avo-streamlit

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  1. .gitattributes +33 -0
  2. README.md +14 -0
  3. app.py +114 -0
  4. requirements.txt +7 -0
.gitattributes ADDED
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+ *.7z filter=lfs diff=lfs merge=lfs -text
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README.md ADDED
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+ ---
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+ title: Wb Avo Streamlit
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+ emoji: 🔥
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+ colorFrom: blue
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+ colorTo: blue
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+ sdk: streamlit
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+ sdk_version: 1.26.0
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+ app_file: app.py
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+ pinned: false
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+ license: apache-2.0
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+ duplicated_from: fr1ll/wb-avo-streamlit
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+ ---
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+
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+ Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
app.py ADDED
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+ import streamlit as st
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+ import bruges as b
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+ from einops import repeat
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+ import numpy as np
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+ from bruges.reflection.reflection import zoeppritz_rpp as zrpp
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+ import pandas as pd
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+ import altair as alt
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+
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+
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+ def vs_from_poisson(vp, poisson):
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+ '''compute pressure velocity from
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+ shear velocity and poissons ratio'''
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+ return np.sqrt((vp**2 - 2*poisson*vp**2)/(2 - 2*poisson))
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+
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+
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+ def gardners(vp):
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+ '''compute density via gardners relation'''
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+ return 1000*0.31*np.power(vp, 0.25)/1.33
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+
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+
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+ def cartesian_product(*arrays):
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+ '''return cartesion product of several arrays'''
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+ ndim = len(arrays)
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+ return (np.stack(np.meshgrid(*arrays), axis=-1)
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+ .reshape(-1, ndim))
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+
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+
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+ def loop_zrpp(vp1,vs1,rho1,vp2,vs2,rho2,theta1):
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+ '''compute reflectivity for many values of
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+ input parameters.
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+ "1" denotes layer one, "2" denotes layer two.
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+ outside this function, I tend to use 0-indexing though.'''
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+ refl_loop = np.empty(len(vp1), dtype=complex)
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+ for i in range(vp1.shape[0]):
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+ refl_loop[i] = zrpp(vp1=vp1[i], vs1=vs1[i], rho1=rho1[i],
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+ vp2=vp2[i], vs2=vs2[i], rho2=rho2[i],
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+ theta1=theta1[i])
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+ return refl_loop
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+
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+ def wb_ava_fig(vwater=1520., rwater = 1025., poissons=0.49):
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+ '''
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+ AVO: Amplitude Versus Offset
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+ AVA: Amplitude Versus Angle
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+ compute AVA at the WB for a range of values,
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+ then plot using altair
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+ '''
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+ ### Set up some variables
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+ VP1 = np.arange(1530,1820,50)
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+ THE = np.arange(0.0, 88., 1.)
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+ POI = np.array([poissons])
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+
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+ ### Set variables that depend on those variables
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+ params = cartesian_product(VP1, THE, POI)
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+ VP1, THE, POI = [a.ravel() for a in np.hsplit(params, 3)]
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+ VP0 = np.full(VP1.shape, vwater)
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+ # V-RMS for ~200 m water depth
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+ VS0 = np.full(VP1.shape, 0.)
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+ RH0 = np.full(VP1.shape, rwater)
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+ # 1025 kg/m^3 per Inversion of the physical properties of seafloor surface, South China Sea, Zhou et al 2021
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+ VP1 = VP1
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+ VS1 = vs_from_poisson(VP1,POI)
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+ RH1 = gardners(VP1)
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+
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+ ### Shove into a dict to pass to zrpp
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+ params = {"vp1": VP0, "vs1": VS0, "rho1": RH0,
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+ "vp2": VP1, "vs2": VS1, "rho2": RH1,
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+ "theta1":THE}
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+
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+ # Compute zoeppritz equation
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+ r = loop_zrpp(**params)
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+
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+ # Put the results into a DataFrame
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+ df = pd.DataFrame({"Vp sub-WB": VP1, "Poisson_s ratio": POI, "Vs sub-WB": VS1,
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+ "Angle": THE, "Amplitude": np.real(r)})
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+
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+ # Select only points pre-critical angle
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+ df["Ang_Crit"] = np.degrees(np.arcsin(1500 / df["Vp sub-WB"].values))
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+ df = df[df["Angle"] < df["Ang_Crit"]]
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+
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+ # Create the altair figure
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+ highlight = alt.selection(type='single', on='mouseover',
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+ fields=["Vp sub-WB:Q"], nearest=True)
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+
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+ base = alt.Chart(df).encode(
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+ x="Angle",
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+ y="Amplitude",
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+ color="Vp sub-WB:Q",
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+ tooltip=["Vp sub-WB", "Vs sub-WB", "Angle", "Amplitude"]
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+ )
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+
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+ points = base.mark_circle().encode(
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+ opacity=alt.value(0)
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+ ).add_selection(
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+ highlight
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+ ).properties(
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+ width=600,
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+ height=450
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+ )
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+
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+ lines = base.mark_line().encode(
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+ size=alt.condition(~highlight, alt.value(3), alt.value(7))
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+ )
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+
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+ return points + lines
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+
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+ vwater = st.slider("Select a value for water velocity", min_value=1495, max_value=1545, value=1520)
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+ rwater = st.slider("Select a value for density of water", min_value=1005, max_value=1045, value=1025)
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+ poissons = st.slider("Select a value for Poisson's ratio", min_value=0.4, max_value=0.5, value=0.48)
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+ # st.write("Poisson's ratio is:", p)
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+
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+
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+ st.altair_chart(wb_ava_fig(vwater, rwater, poissons))
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+
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+
requirements.txt ADDED
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+ altair
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+ pandas
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+ numpy
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+ bruges
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+ scipy
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+ matplotlib
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+ einops