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4 votes
1 answer
2k views

What is meant by optimal estimator and how to determine optimality?

Considering an estimation problem of estimating a scalar deterministic parameter $a$ from the observations $y$ which are corrupted by randomvariable $w$. The observations are $y[n] = a + w[n]$ Least …
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1 vote
1 answer
61 views

Help in understanding if the maximum likelhood estimation is working properly

I am learning estimation theory and need help in understanding for educational purpose how the concept of ML works with the help of a step by step implementation. I am trying to find out the ML estim …
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1 vote
1 answer
58 views

Notation confusion -- What is the correct operator for computation of the log-likelihood exp...

This question is an extension of another question of mine asked earlier here Help in understanding if the maximum likelhood estimation is working properly In that question the inputs were real valued …
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0 votes
1 answer
81 views

Spreading sequence and equalization based on a paper

I am having difficulty in understanding how the Authors in this paper, An EM based method for semi blind identification of linear systems driven by Chaotic signals have used the expressions derived f …
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2 votes
1 answer
224 views

Beginner level : Help in understanding from paper how the log-likelihood term has been obtained

Based on document : Practical Approaches to Principal Component Analysis in the Presence of Missing Values The document explains probabilistic approach to principal component analysis using Maximum A …
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1 vote
1 answer
179 views

Is the calculation of variance correct from an estimator -- confusion regarding complex numb...

I have an expression for the varaince of measurement noise obtained from an estimator. The measurement noise is additive white gaussian having values in complex domain. I have squared the term $(.)^2$ …
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2 votes
1 answer
262 views

How to apply least-squares estimation for sparse coefficient estimation?

The model is expressed as follows $$y(n) = \sum_{i=0}^{p-1} r(i) x(n-i) + v(n) \tag{1}$$ where $\mathbf{r} = \begin{bmatrix} r_1 & r_2 & \ldots &r_p \end{bmatrix}^T$ is the sparse length-$p$ vector c …
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0 votes
1 answer
1k views

How to Implement and Minimize Maximum Likelihood Expression in MATLAB

I need to check if the estimation algorithm has converged or not. I am using the Maximum Likelihood estimation method. For convergence check, we see if the log-likelihood has reached its maximum value …
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