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The New Zealand Vaccination Records Leak: A New Analysis by William Briggs and Some Lesser Thoughts of My Own

The New Zealand Vaccination Records Leak: A New Analysis by William Briggs and Some Lesser Thoughts of My Own
Photo by Daniel Schludi / Unsplash

As everybody in this corner of the internet knows, a New Zealand Te Whatu Ora employee named Barry Young leaked four million vaccination records from New Zealand’s “pay per dose” vaccine program to Steve Kirsch on 8 November. The records pertain to doses administered to individual patients at apothecaries and doctors’ practices; vaccines administered by special mobile vaccination teams and at government mass vaccination centers were recorded separately and remain hidden from us.

Kirsch removed patient names from the data before providing a summary version to Norman Fenton and the full records to my friend William Briggs for independent review. Finally, on 30 November, he released the anonymized dataset to the internet and posted his own analysis to Substack, where he argues vigorously that the records show a vaccine-associated mortality rate of one death per 1,000 doses. This mortality rate would mean well over 13 million vaccine-induced deaths worldwide.

A lively Twitter debate has emerged about the significance of the data and their proper interpretation. Further drama has visited the real world. Young, the leaker, was arrested on Sunday for “dishonestly accessing Te Whatu Ora databases.” He faces up to seven years in prison; he was released on bail on Tuesday. Meanwhile, the New Zealand Ministry of Health secured a court injunction to stop the distribution of the leak and used this authority to close Kirsch’s Wasabi file server. Friend-of-the-blog Kevin McKernan, who had agreed to mirror the data, likewise had his account with the file hosting service MEGA deleted with no notice, at considerable personal and professional cost. These measures are of course contemptible and they will do nothing to stop the further spread of the leaked data, which are now all over the internet.

Some of you have asked me my thoughts about the leak, but I didn’t want to say anything until Briggs published his analysis, because his work has always been very important to me. I am pleased to say that he has now published his full, in-depth report. I encourage you to read the whole thing and also to subscribe to his Substack. You won’t regret it:

Science Is Not The AnswerNew Zealand Vaccine Data: Possible Injuries & Misleading SignalsThanks to everybody from yesterday. I saw nothing that made me change my mind, so I’m publishing my analysis as is. There is this new caveat about the data a reader at the Substack mirror discovered. But as I have always insisted, all analyses are conditional on the data. Substack informs me not everybody will see the entire post in emails, and that you…Read more5 hours ago · 19 likes · 14 comments · William M Briggs

See also his Twitter thread, where he summarises the most important points.

As for my thoughts:

1) New Zealand has reacted harshly against the leaker and against those who have hosted the leak, even in its anonymized form. This reaction cannot, in itself, be used to argue that there must be evidence of mass vaccine mortality in this dataset. I don’t know anything about New Zealand law, but I would not be surprised to find that the unauthorized release of non-anonymized patient records is a crime there. This is not a comment on the justice of Young’s arrest, merely an observation. It is highly likely that New Zealand health authorities themselves are uncertain about what lurks in their vaccine records and what random internet people might find in them. Clearly they have been stupid enough to trigger the Streisand Effect by deleting the accounts of Kirsch and McKernan, so we should not expect too much of them. It is also possible that there are things other than vaccine mortality lurking in these numbers that they want to keep hidden from the public and that the internet has yet to discover. Finally, bureaucracies fight ferocious battles to keep even the most mundane records secret, because even the pretense of access to hidden information allows state officials to make statements that outsiders cannot challenge or verify.

2) I was fairly certain from the beginning that there would be nothing all that dramatic in these records, for the simple reason that all-cause New Zealand mortality does not leave room for massive vaccine mortality.

Consider all-cause mortality in New Zealand for the past five years:

2023 is not over yet, but 37,569 deaths have been counted there through the end of September. This is somewhat lower than the 38,052 deaths recorded by September 2022, so 2023 is on track to be a slightly better year.

New Zealand effectively shut itself off from the world in 2020 in an effort to stop COVID-19, and their measures inevitably stopped a lot of other viruses too. At great cost, they seem to have saved about 2,000 lives in the short term, accounting for the anomalously low death numbers in 2020. The elevated death numbers for 2022 – the year the pandemic reached New Zealand – are officially the fault of Covid, but some of them must simply represent a return to baseline mortality from the low point of 2020, because viruses tend to kill the very old and the very sick, and these people have to die sometime. In 2022 and 2023, I can see room for an absolute maximum of 8,000 excess deaths. Probably 2,000 of these are sick and frail people who would’ve died in 2020 had it been a normal year, and so we’re left with at most 6,000 excess deaths to divide between the arrival of Covid, the return of other viruses, and the vaccines. This is remarkably close to the official Covid New Zealand death count, which is currently at 5,143.

It’s simple, then: How much room you think there is for direct vaccine mortality will depend on how much you dispute these official Covid death numbers. I propose that any more than 2,000 vaccine deaths is just not very plausible. Certainly, there is no way to make Kirsch’s estimated vaccine mortality rate of one death per 1,000 vaccinations work with these numbers. New Zealand has administered 12 million doses, which would mean 12,000 vaccine-induced deaths. I see no room for that kind of mortality here.

Some will surely object that the mortality numbers cannot be trusted, but if that’s the case, we are totally in the dark and we don’t know anything. Even if you want to argue that all Covid deaths are reassigned vaccine deaths, we still don’t have the numbers to make the math work. Of course, all of this applies only to direct vaccine mortality; some of the Covid deaths could be down to immune imprinting or vaccine-enhanced transmission of SARS-2, but these are somewhat different questions, which the leaked data don’t shed much light on.


Briggs makes many important points, and I again encourage you to read his entire piece. Here I only want to highlight the most crucial part of his analysis, where he explains how the leaked records contain “misleading signals” that at first glance suggest high vaccine mortality, but that are actually mostly an artefact of sampling.

He provides this histogram, of the number of deaths after just one jab, after just two jabs, after just three jabs, and so on. In every case, there appears to be a mortality blip immediately following vaccination. This looks at first like the vaccines are killing a  lot of people.

Bild

In fact, it is largely an illusion caused by the nature of the data, which do not continue to the present or into the future, but stop in early October 2023. Basically, we cannot see mortality more than 850 days out from the earliest jabs, and this causes deaths to artificially cluster in the early days post-jab.

This is a little hard to explain, so bear with me: Pretend we’re studying the immediate mortality caused by a benign vitamin pill (which should not kill anyone), and our dataset covers only ten days. People can take the pill at any time – on day 1, on day 2, on day 7, or on day 10. Some random number of them may die of totally unrelated causes on any day after taking the pill. People who take the pill on day 1 have ten days to die. Their deaths can occur on any day post-pill – one day post-pill all the way up to nine days post-pill. People who take the pill on day 9, however, can only die one day post-pill. Otherwise, their deaths will be invisible to us. Because of these stragglers, you’ll end up counting more deaths in the early days after taking the pill, because your dataset is more complete for the early days post-pill than it is for the later days post-pill.

All of that said, Briggs also notes that this sampling artifact is not the only thing going on in the data. There does appear to be some unusual clustering of deaths in the early days after the first and second jabs, particularly in people under thirty years of age. We’re talking hundreds and not thousands of deaths here, but I think it’s very plausible that this is a real signal of direct vaccine-induced death, precisely in those age cohorts at least risk of Covid mortality. This is similar to mortality effects suggested by an exhaustive study of German mortality data I posted about last year, and if this can be confirmed, it would be a great scandal, because the vaccines do not stop transmission and there was no reason to risk the lives of young people with our deranged mass vaccination campaigns.

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