A few things were going wrong here.
First, we take a "RetryPeriod" option on backup and restore which is
meant to be roughly the total amount of time we spend retrying any
given request before failing. However we were incorrectly passing that
as the RetryMaxWait which is the maximum amount of time to sleep
between any two attempts. We now do some fuzzy math to figure out
approximately how many attempts we should make given a minimum sleep
of 100ms and the fact that we double the sleep time every attempt.
Second, during the backup test, if a host was totally stopped when we
started the request, it would fail immediately and then retry, but if
the host was stopped during the request (after DNS had resolved), then
the request would wait for the DialTimeout which we default to 30s, so
turning off the cluster for 5 seconds and turning it back on resulted
in the backup completing rather than failing. Because of this, we
change the commandClient to have a default dial timeout of 1 second.
I was tempted to change the global default to 1s which I think would
be fine, but didn't want to break anything too badly.
instead of awkwardly reading an entire file into a buffer, we use
retryablehttp's reader func to open the file fresh if we need to
retry, so a small fixed-size buffer can be used internally for copying
the contents onto the network.
i used this script, a little clunky but it got the job done
```bash
for file in `find . -type f -print | grep '\.go'`; do
sed '1,/^\/\/ limitations under the License.$/d' $file > $file.tmp;
result=`cat $file.tmp`
if [[ result != "" ]]; then
gofmt $file.tmp &> /dev/null;
if [[ $? == 0 ]]; then
mv $file.tmp $file && gofmt -w $file;
else
rm $file.tmp;
fi
else
rm $file.tmp;
fi
done
```
Previously, multiple frames with different prefixes were used to separate
different data layouts. This included separating standard row/column
layouts from inverted column/row layouts as well as storing aggregate
information for timestamp data.
Unfortunately, this caused frame meta data to be copied between multiple
frames and it made it difficult to keep these frames in sync.
This commit separates these different physical layouts into `Views`.
A `Frame` now has one or more views which represent each layout.
Fragments have been moved from under the `Frame` to be contained
within the `View`.
There are two primary views:
- `standard`
- `inverse`
If a frame has a time quantum, then views are generated for these
each of the standard/inverse views. For example a time quantum
of `YMDH` for the date `2000-01-02T00:00:00Z` would create the
following views:
- `standard_2000`
- `inverse_2000`
- `standard_200001`
- `inverse_200001`
- `standard_20000102`
- `inverse_20000102`
From the user's perspective, nothing should change in PQL. Different
PQL statements will handle the appropriate view automatically. For
example, `Bitmap()` and `Profile()` will fetch using the `standard`
view or the `inverse` view, respectively. The `Range()` statement
will lookup the appropriate time-based views automatically.