removed unecessary fiels
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@@ -39,6 +39,23 @@ pregnancies, which would make the prediction task ambiguous.
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%TODO: show that for initial testing and fine tuning the dataset was reduced to 10% of size to speed up early impressions of performance
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%TODO: show that initial feature set with only temperature as observable and only pregnancy "chance" as target
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% did not show promise on small 10% dataset, so the features got extended
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% show the modifications that were made to account for multi target prediction
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% show, the mothod of circumventing the non-padding-implementation by using a dedicated feature
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% show, that a different loss / temporal loss wheighting or position aware loss could help
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% show, the problem of the model using its past targets, even though they are not observable and how I dealt with this -> explain and use exogenous
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% introduce change of quantiles to single variable output and why, quantiles loss other than .5 was almost always just 0 or 1, so no significant predicitve quality in this, and this only makes predictions harder for model
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% explain why class imablances are there, and what I did to counteract this, also explain, why special weighting is useful for something like the pregnancy risk prediction
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% show the work that needed to be done for inference -> padding values for future observables
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Notes for training:
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- one head 512 hidden size make very "smoothed" out curves, which result in ver conservative predictions
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Intermediate training results:
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- first full training:
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- first feature config with ov over and fertility did not show much promise, as it detected the ov too late, essentially when it was already over
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- either there is no patterns detectable in advance, or there are not enough features yet
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- soft of "soft ceiling" at 0.3 loss, many models get there quickly and then "bounce" around
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\subsection{Time-Series Modeling Approach}\label{subsec:time-series_modeling_approach}
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\subsubsection{Limitations of Traditional Time-Series Models}\label{subsubsec:limitations_of_traditional_time-series_models}
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