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Is it possible to fix parameters while fitting distributions in SciPy? For example, this code:

import scipy.stats as st
xx = st.expon.rvs(size=100)
print st.expon.fit(xx, loc=0)

results in non-zero location (loc).

When some parameter is provided to the fit function it is considered as an initial guess. And if it is provided to the constructor (st.expon(loc=0)) the distribution becomes "frozen" and can not be used for fitting.

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Please elaborate on your question. –  joel3000 Feb 6 at 18:22

1 Answer 1

up vote 1 down vote accepted

To fix loc, use the argument floc:

print st.expon.fit(xx, floc=0)

E.g.

In [33]: import scipy.stats as st

In [34]: xx = st.expon.rvs(size=100)

In [35]: print st.expon.fit(xx, floc=0)
(0, 0.77853895325584932)

Some related questions:

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