Showing posts with label pulse-compression. Show all posts
Showing posts with label pulse-compression. Show all posts

Friday, 9 May 2014

5 MHz EISCAT sampling ... First time ever

During the last day of the quadriphase-coded experiments, we decided to push the limits of the EISCAT sampling system by sampling at 5 MHz with one channel! This allows us to study the plasma lines. In pulse-compression quadriphase code groups are used!

This posting concludes reporting from this successful campaign! We will be back in this business early June!


Two quadriphase codes transmitted and sampled at 5 MHz at EISCAT!

Thursday, 8 May 2014

EISCAT plasma parameter plot 8 May 2014

Today we continued the quadriphase-coded experiments with EISCAT UHF in Tromsø, Norway! For comparison purposes, we ran first regular Beata experiment 11:00-11:12 UT. Then we used pretty much the same setting as yesterday, i.e. four code cycles. Below are the preliminary plasma parameter fits. We note that the F-region maximum is in rather good correspondence with the dynasonde measurement! We had one crowbar at 12:26!



Day 2: Quadriphase-coded expms continue

Today we will run nearly the same experiment as yesterday. We have slightly modified the quadriphase codes and this naturally affects analysis. We will report the results in Twitter and hopefully also in the blog in the afternoon! Operations commence at 11:00 UT !!!

In addition to the EISCAT UHF and VHF radars, there is a significant number of other instruments at the EISCAT site. From the KAIRA point of view, one of the most interesting instruments is the MORRO 56 MHz MST radar. The MORRO signals can be received with the KAIRA LBA field! Hence, below is a photo of the MORRO antenna field! ... and yes it is again a very beautiful day in Tromsø!!


Wednesday, 7 May 2014

Day 1: Quadriphase-coded experiments

It's the first day of the quadriphase-code experiments at EISCAT Tromsø! This is a joint Finnish-Norwegian campaign, with a little help from Millstone Hill. We have three basic code cycles:

ac32bin    is the 32-bit binary alternating code from EISCAT UHF beata (64 codes)
cg32bin    is an optimised cycle of 32-bit binary codes (16 codes)
cg32quad is an optimised cycle of 64-bit quadriphase codes (16 codes)

In addition we have an "extra" codeset, a normal beata modulation (ac32bin), but implemented using the 4-phase shifter HW which otherwise is used in the 4-phase code set.

So let us hope that everything goes smoothly!


Panorama of the EISCAT transmitter site: Left-hand side is the VHF radar and right-hand side is the UHF radar! We will use the UHF for this experiment!

Thursday, 6 March 2014

Recent developments in pulse-compression - Upgrading EISCAT UHF

Pulse-compression techniques are regularly used in high-power ionospheric incoherent scatter radars. For example, the EISCAT Tromsø has binary coding possibility. As I have understood pulse-compression, it is typically due to two factors:

  1. High-power amplifier technology supports transmitting longer pulses with lower peak power instead of shorter pulses with very high peak power.
  2. The wanted range resolution is of the order of microseconds or less while range extent of the target is typically milliseconds. Thus if we send microsecond pulse in millisecond intervals, the transmitter is nonoperational for a very large portion of time.
Because of these reasons, we use pulse-compression techniques in high-power radars, i.e. Barker codes, chirped signals etc.

SGO team has concentrated on designing a number of different coding and analysis techniques. The first significant breakthroughs were done already in 1980s with alternating coding development. During recent years, we have been working on perfect pulse-compression coding techniques. These codes were first reported in

[1] M. Lehtinen, B. Damtie, P. Piiroinen and M. Orispää, Perfect and almost perfect pulse compression codes for range spread targets, Inverse Problems and Imaging 3 (2009) 465-486.

A succession to this paper was reported in

[2] L. Roininen and M. S. Lehtinen, Perfect pulse-compression coding via ARMA algorithms and unimodular transfer functions, Inverse Problems and Imaging (2013) 649-661.

The paper [1] included a crucial discussion on comparison of measurements developed by Petteri Piiroinen from University of Helsinki. This mathematical formalism gives us a solid background to compare different kinds of measurements and hence also coding techniques. Paper [2] shows the relation of the coding problem to the classical study of unimodular polynomials with constrained coefficients.

As [1] and [2] need amplitude and binary phase coding, we have not yet run any real measurements with these codes in high-power radars. Of course at some point we will do this also! However, in 2012, we ran a series of polyphase coded experiments with the Millstone Hill ISR in Massachusetts, USA. These were reported in Radio Science

[3]  I. I. Virtanen, F. Lind, L. Roininen, P. Erickson, W. Rideout, M. Orispää, J. Vierinen, and M. Lehtinen,  Polyphase-coded incoherent scatter measurements at Millstone Hill, Radio Science, 48 (2013).

To our knowledge, this was the first reported polyphase-coded ISR experiment.  Of course we want to do similar things with EISCAT system. Hence during the Finnish November EISCAT campaign, we discussed a possibility for doing quadriphase coded experiments by minor modifications of the current EISCAT UHF. This option is now available and we are going to schedule these experiments for the May campaign. Provided that everything will go ok, we will report these experiments in the web log and hope to publish them in peer-reviewed journals!

Naturally we are also continuing the development of the mathematical background for pulse-compression code comparison. This week, we are going to submit a paper on pulse-compression of continuous codes to Inverse Problems and Imaging. The reference is:

[4] L. Roininen, M. S. Lehtinen, P. Piiroinen and I. I. Virtanen, Perfect pulse compression coding via unimodular Fourier multipliers, manuscript in progress.

Hence, we are working on both the mathematical background of the pulse-compression techniques and upgrading the existing hardware to more advanced coding possibilities. And of course... The EISCAT_3D needs a whole lot more!

EISCAT UHF Klystrons!