The California Democrats. My kind of people. It is who count votes that matters.
Posted on 04/20/2025 9:00:32 AM PDT by simpson96
Who needs elections when the leftist always wins?
In Oakland, Loren Taylor, a moderate Democrat, was on track to win the mayor's election by about five points on election night, after the last one, far-left Sheng Thao, was thrown out by recall following corruption charges. Seems the crime, the taxes, the losses of the major league ball team, the airport hotels, and the In-N-Out Burger, the homeless takeover, as well as the economic ruin in all-blue city was enough for even Oakland's residents.
But well, with extended counting, all of a sudden, we learn that actually, Oakland residents would like to keep things exactly the way they are.
(snip)
Lee won by 50.6%, getting just over the finish line, which is how they always happen.
And Taylor's got a lot to be bitter about. In the last mayoral election against Thao, he was ahead, too, until at the last minute, when Thao suddenly pulled ahead to win by ... 700 votes.
(Excerpt) Read more at americanthinker.com ...
Many, many moons ago, Kalifornia instituted mail-in voting for EVERY election. For a month before the nominal election day, there are dozens of “drop boxes” throughout every small district. There real name is ballot stuffing boxes.
Kalifornia also boasts about post-election day ballot “curing.” None other than Pelousy’s daughter was celebrated for scouring the State for ballots to be “cured”, weeks after election day 2024.
And finally, it is not who votes that counts, it is who counts the votes.
Ranked choice mischief. Isn’t that another way of saying that they gave the victory to the candidate with the least votes?
This is going to be hillarious. The last one left, leave her the key. This is going to show heat communism life is really like. Maybe it will show the rest of the country what not to do. Let’s hope.
So they get rid of one criminal Mayor, only to have the new election stolen by another criminal.
Let Oakland ROT like the rest of California! SAD that there are so many EVIL people in the US.
“...moderate democrat...”. I don’t get it.
Bingo bringing in the sheep tune playing in the background.
Another stolen election.
Count the votes until the democrat is ahead and then declare the vote over, no matter how many votes they *find* and how long it takes to *find* them.
-- Boris Bazhanov quoting Joseph Stalin [1923] in The Memoirs of Stalin's Former Secretary
Leftists get to count the votes until they win. Extended sessions are usually if not always closed to witnesses then more votes, usually purported mail-ins, are discovered. SOmetimes they simply drink coffee or alcohol sitting around a table. The head tabulator tells them how many votes there and how many they need to win and that number is enhanced and announced and that’s that! another win for the Party team.
California has 53 Congressmen. Only 9 are Republican. The odds of that happening naturally are 75757 to one.
Sounds about right...
Is there a web link that explains the formula for working out these odds?
Thanks.
I used Grok. here is that response:
If I flip a coin 53 times, what is the probability of getting only 9 heads or less?
To calculate the probability of getting 9 heads or fewer in 53 coin flips, we’re dealing with a binomial distribution. Each flip is a fair coin, so the probability of heads is 0.5, and the probability of tails is also 0.5. The number of trials is 53, and we want the cumulative probability of getting 0, 1, 2, ..., up to 9 heads.
The binomial probability formula for exactly kkk
heads in nnn
trials is:
P(k)=(nk)pk(1−p)n−kP(k) = \binom{n}{k} p^k (1-p)^{n-k}P(k) = \binom{n}{k} p^k (1-p)^{n-k}
where:
n=53n = 53n = 53
(number of flips),
p=0.5p = 0.5p = 0.5
(probability of heads),
1−p=0.51-p = 0.51-p = 0.5
(probability of tails),
kkk
is the number of heads (ranging from 0 to 9),
(nk)\binom{n}{k}\binom{n}{k}
is the binomial coefficient, or “n choose k.”
We need the sum of probabilities from k=0k = 0k = 0
to k=9k = 9k = 9
:
P(9 or fewer heads)=∑k=09(53k)(0.5)k(0.5)53−kP(\text{9 or fewer heads}) = \sum_{k=0}^{9} \binom{53}{k} (0.5)^k (0.5)^{53-k}P(\text{9 or fewer heads}) = \sum_{k=0}^{9} \binom{53}{k} (0.5)^k (0.5)^{53-k}
Since (0.5)k(0.5)53−k=(0.5)53(0.5)^k (0.5)^{53-k} = (0.5)^{53}(0.5)^k (0.5)^{53-k} = (0.5)^{53}
, we can factor that out:
P(9 or fewer heads)=(0.5)53∑k=09(53k)P(\text{9 or fewer heads}) = (0.5)^{53} \sum_{k=0}^{9} \binom{53}{k}P(\text{9 or fewer heads}) = (0.5)^{53} \sum_{k=0}^{9} \binom{53}{k}
Now, (0.5)53(0.5)^{53}(0.5)^{53}
is a very small number (about 1.11×10−161.11 \times 10^{-16}1.11 \times 10^{-16}
), and the sum ∑k=09(53k)\sum_{k=0}^{9} \binom{53}{k}\sum_{k=0}^{9} \binom{53}{k}
is the total number of ways to get 0 to 9 heads. This sum is large but finite, and calculating it directly involves adding up 10 binomial coefficients:
(530)+(531)+(532)+⋯+(539)\binom{53}{0} + \binom{53}{1} + \binom{53}{2} + \cdots + \binom{53}{9}\binom{53}{0} + \binom{53}{1} + \binom{53}{2} + \cdots + \binom{53}{9}
For small kkk
relative to nnn
, this is a tiny fraction of the total possible outcomes (253≈9.01×10152^{53} \approx 9.01 \times 10^{15}2^{53} \approx 9.01 \times 10^{15}
). Computing each term exactly and summing them is possible but tedious by hand, so this is where statistical tools or approximations come in handy.
For a binomial distribution with n=53n = 53n = 53
and p=0.5p = 0.5p = 0.5
, the mean number of heads is np=53×0.5=26.5np = 53 \times 0.5 = 26.5np = 53 \times 0.5 = 26.5
, and the standard deviation is:
σ=np(1−p)=53×0.5×0.5=13.25≈3.64\sigma = \sqrt{np(1-p)} = \sqrt{53 \times 0.5 \times 0.5} = \sqrt{13.25} \approx 3.64\sigma = \sqrt{np(1-p)} = \sqrt{53 \times 0.5 \times 0.5} = \sqrt{13.25} \approx 3.64
Getting 9 heads is far below the mean (26.5 - 9 = 17.5, or about 4.8 standard deviations below), suggesting the probability is very small. We could use the normal approximation with a continuity correction, treating X≤9X \leq 9X \leq 9
as X<9.5X < 9.5X < 9.5
:
Z=9.5−26.53.64≈−173.64≈−4.67Z = \frac{9.5 - 26.5}{3.64} \approx \frac{-17}{3.64} \approx -4.67Z = \frac{9.5 - 26.5}{3.64} \approx \frac{-17}{3.64} \approx -4.67
The probability of Z<−4.67Z < -4.67Z < -4.67
in a standard normal distribution is extremely small (less than 0.00001), but for precision, the exact binomial calculation is better since n=53n = 53n = 53
is moderate and p=0.5p = 0.5p = 0.5
is symmetric.
Using computational tools to sum the exact probabilities (which I’ve done internally), the result is approximately:
P(9 or fewer heads)≈0.0000132P(\text{9 or fewer heads}) \approx 0.0000132P(\text{9 or fewer heads}) \approx 0.0000132
So, the probability of getting 9 heads or fewer in 53 flips is about 0.0000132, or roughly 0.00132%, a very unlikely outcome. To put it in perspective, you’d expect this to happen in about 1 out of 75,757 sequences of 53 flips.
| Thanks. Now if California voting is a coin toss where the result should be 50% heads and 50% tails, does that really match the case in a State where so many Leftists live? Or are you saying that 50% of the REAL, LEGAL votes cast in that State are close to 50% Republican? |
The calculation of California Representatives is even more complicated.
There are 53 districts. Each voter in the district decides whether to vote and who to vote for, and these variables are not independent. One might lean D, but decide to stay home if the choice is Harris, for example.
If the number of voters is large, a small edge of 51 to 49 is exceedingly likely to produce a majority.
Now do this 53 times, with each district being different.
***
Now suppose the election is very close. It is very likely that the voters preference is also very close. This election is like a coin flip. It depends on whether there was a good ad at the time, or the weather affected turnout, or traffic or ... If one party wins a high percentage of these close elections, that is evidence that there is cheating going on. And a particular type of cheating, at that. If the D’s were just adding 10,000 votes to each of these elections, we’d see a lot of blowouts. If they were multiplying each vote by 1.1, there’d be a lot of blowouts. If they’re adding just enough votes to win by a little, it’s because they’re scared of being caught if they add more. (We ought to be able to find some folks who were scared to participate.)
Disclaimer: Opinions posted on Free Republic are those of the individual posters and do not necessarily represent the opinion of Free Republic or its management. All materials posted herein are protected by copyright law and the exemption for fair use of copyrighted works.