ExperimentConfig.md 19.6 KB
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# Experiment config reference
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A config file is needed when create an experiment, the path of the config file is provide to nnictl.
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The config file is written in YAML format, and need to be written correctly.
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This document describes the rule to write config file, and will provide some examples and templates. 
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* [Template](#Template) (the templates of an config file)
* [Configuration spec](#Configuration) (the configuration specification of every attribute in config file)
* [Examples](#Examples) (the examples of config file)
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<a name="Template"></a>
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## Template
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* __light weight(without Annotation and Assessor)__

```yaml
authorName:
experimentName:
trialConcurrency:
maxExecDuration:
maxTrialNum:
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#choice: local, remote, pai, kubeflow
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trainingServicePlatform:
searchSpacePath:
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#choice: true, false
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useAnnotation:
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tuner:
  #choice: TPE, Random, Anneal, Evolution
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  builtinTunerName:
  classArgs:
    #choice: maximize, minimize
    optimize_mode:
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  gpuNum:
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trial:
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  command:
  codeDir:
  gpuNum:
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#machineList can be empty if the platform is local
machineList:
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  - ip:
    port:
    username:
    passwd:
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```
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* __Use Assessor__
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```yaml
authorName:
experimentName:
trialConcurrency:
maxExecDuration:
maxTrialNum:
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#choice: local, remote, pai, kubeflow
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trainingServicePlatform:
searchSpacePath:
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#choice: true, false
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useAnnotation:
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tuner:
  #choice: TPE, Random, Anneal, Evolution
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  builtinTunerName:
  classArgs:
    #choice: maximize, minimize
    optimize_mode:
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  gpuNum:
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assessor:
  #choice: Medianstop
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  builtinAssessorName:
  classArgs:
    #choice: maximize, minimize
    optimize_mode:
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  gpuNum:
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trial:
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  command:
  codeDir:
  gpuNum:
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#machineList can be empty if the platform is local
machineList:
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  - ip:
    port:
    username:
    passwd:
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```
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* __Use Annotation__
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```yaml
authorName:
experimentName:
trialConcurrency:
maxExecDuration:
maxTrialNum:
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#choice: local, remote, pai, kubeflow
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trainingServicePlatform:
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#choice: true, false
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useAnnotation:
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tuner:
  #choice: TPE, Random, Anneal, Evolution
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  builtinTunerName:
  classArgs:
    #choice: maximize, minimize
    optimize_mode:
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  gpuNum:
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assessor:
  #choice: Medianstop
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  builtinAssessorName:
  classArgs:
    #choice: maximize, minimize
    optimize_mode:
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  gpuNum:
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trial:
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  command:
  codeDir:
  gpuNum:
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#machineList can be empty if the platform is local
machineList:
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  - ip:
    port:
    username:
    passwd:
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```
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<a name="Configuration"></a>
## Configuration spec
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* __authorName__
  * Description  
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    __authorName__ is the name of the author who create the experiment.
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   TBD: add default value
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* __experimentName__
  * Description
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    __experimentName__ is the name of the experiment created.  
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    TBD: add default value
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* __trialConcurrency__
  * Description
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    __trialConcurrency__ specifies the max num of trial jobs run simultaneously.  

    Note: if trialGpuNum is bigger than the free gpu numbers, and the trial jobs running simultaneously can not reach trialConcurrency number, some trial jobs will be put into a queue to wait for gpu allocation.

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* __maxExecDuration__
  * Description
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    __maxExecDuration__ specifies the max duration time of an experiment.The unit of the time is {__s__, __m__, __h__, __d__}, which means {_seconds_, _minutes_, _hours_, _days_}.  

    Note: The maxExecDuration spec set the time of an experiment, not a trial job. If the experiment reach the max duration time, the experiment will not stop, but could not submit new trial jobs any more.

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* __debug__
  * Description

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    NNI will check the version of nniManager process and the version of trialKeeper in remote, pai and kubernetes platform. If you want to disable version check, you could set debug be true.
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* __maxTrialNum__
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  * Description

   __maxTrialNum__ specifies the max number of trial jobs created by NNI, including succeeded and failed jobs.  

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* __trainingServicePlatform__
  * Description
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    __trainingServicePlatform__ specifies the platform to run the experiment, including {__local__, __remote__, __pai__, __kubeflow__}.  

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    * __local__ run an experiment on local ubuntu machine.  
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    * __remote__ submit trial jobs to remote ubuntu machines, and __machineList__ field should be filed in order to set up SSH connection to remote machine.  
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    * __pai__  submit trial jobs to [OpenPai](https://github.com/Microsoft/pai) of Microsoft. For more details of pai configuration, please reference [PAIMOdeDoc](./PAIMode.md)
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    * __kubeflow__ submit trial jobs to [kubeflow](https://www.kubeflow.org/docs/about/kubeflow/), NNI support kubeflow based on normal kubernetes and [azure kubernetes](https://azure.microsoft.com/en-us/services/kubernetes-service/).
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* __searchSpacePath__
  * Description
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    __searchSpacePath__ specifies the path of search space file, which should be a valid path in the local linux machine.

    Note: if set useAnnotation=True, the searchSpacePath field should be removed.

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* __useAnnotation__
  * Description
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    __useAnnotation__ use annotation to analysis trial code and generate search space.

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    Note: if set useAnnotation=True, the searchSpacePath field should be removed.
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* __nniManagerIp__
  * Description
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    __nniManagerIp__ set the IP address of the machine on which NNI manager process runs. This field is optional, and if it's not set, eth0 device IP will be used instead.
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    Note: run ifconfig on NNI manager's machine to check if eth0 device exists. If not, we recommend to set nnimanagerIp explicitly.
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* __logDir__
  * Description

    __logDir__ configures the directory to store logs and data of the experiment. The default value is `<user home directory>/nni/experiment`

* __logLevel__
  * Description

    __logLevel__ sets log level for the experiment, available log levels are: `trace, debug, info, warning, error, fatal`. The default value is `info`.

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* __logCollection__
  * Description
    __logCollection__ set the way to collect log in remote, pai, kubeflow, frameworkcontroller platform. There are two ways to collect log, one way is from `http`, trial keeper will post log content back from http request in this way, but this way may slow down the speed to process logs in trialKeeper. The other way is `none`, trial keeper will not post log content back, and only post job metrics. If your log content is too big, you could consider setting this param be `none`.

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* __tuner__
  * Description
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    __tuner__ specifies the tuner algorithm in the experiment, there are two kinds of ways to set tuner. One way is to use tuner provided by NNI sdk, need to set __builtinTunerName__ and __classArgs__. Another way is to use users' own tuner file, and need to set __codeDirectory__, __classFileName__, __className__ and __classArgs__.
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  * __builtinTunerName__ and __classArgs__
    * __builtinTunerName__
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      __builtinTunerName__ specifies the name of system tuner, NNI sdk provides four kinds of tuner, including {__TPE__, __Random__, __Anneal__, __Evolution__, __BatchTuner__, __GridSearch__}
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    * __classArgs__
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      __classArgs__ specifies the arguments of tuner algorithm. If the __builtinTunerName__ is in {__TPE__, __Random__, __Anneal__, __Evolution__}, user should set __optimize_mode__.
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  * __codeDir__, __classFileName__, __className__ and __classArgs__
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    * __codeDir__

      __codeDir__ specifies the directory of tuner code.
    * __classFileName__

      __classFileName__ specifies the name of tuner file.
    * __className__

      __className__ specifies the name of tuner class.
    * __classArgs__

      __classArgs__ specifies the arguments of tuner algorithm.
    * __gpuNum__

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      __gpuNum__ specifies the gpu number to run the tuner process. The value of this field should be a positive number.
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      Note: users could only specify one way to set tuner, for example, set {tunerName, optimizationMode} or {tunerCommand, tunerCwd}, and could not set them both.
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* __assessor__
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  * Description
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    __assessor__ specifies the assessor algorithm to run an experiment, there are two kinds of ways to set assessor. One way is to use assessor provided by NNI sdk, users need to set __builtinAssessorName__ and __classArgs__. Another way is to use users' own assessor file, and need to set __codeDirectory__, __classFileName__, __className__ and __classArgs__.
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  * __builtinAssessorName__ and __classArgs__
    * __builtinAssessorName__
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      __builtinAssessorName__ specifies the name of system assessor, NNI sdk provides one kind of assessor {__Medianstop__}
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    * __classArgs__

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      __classArgs__ specifies the arguments of assessor algorithm

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  * __codeDir__, __classFileName__, __className__ and __classArgs__
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    * __codeDir__
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      __codeDir__ specifies the directory of assessor code.

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    * __classFileName__
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      __classFileName__ specifies the name of assessor file.

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    * __className__
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      __className__ specifies the name of assessor class.

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    * __classArgs__
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      __classArgs__ specifies the arguments of assessor algorithm.

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  * __gpuNum__
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    __gpuNum__ specifies the gpu number to run the assessor process. The value of this field should be a positive number.

    Note: users' could only specify one way to set assessor, for example,set {assessorName, optimizationMode} or {assessorCommand, assessorCwd}, and users could not set them both.If users do not want to use assessor, assessor fileld should leave to empty.

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* __trial(local, remote)__
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  * __command__
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    __command__  specifies the command to run trial process.

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  * __codeDir__
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    __codeDir__ specifies the directory of your own trial file.

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  * __gpuNum__
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    __gpuNum__ specifies the num of gpu to run the trial process. Default value is 0.
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* __trial(pai)__
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  * __command__

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    __command__  specifies the command to run trial process.

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  * __codeDir__
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    __codeDir__ specifies the directory of the own trial file.

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  * __gpuNum__
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    __gpuNum__ specifies the num of gpu to run the trial process. Default value is 0.

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  * __cpuNum__

    __cpuNum__ is the cpu number of cpu to be used in pai container.
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  * __memoryMB__

    __memoryMB__ set the momory size to be used in pai's container.
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  * __image__

    __image__ set the image to be used in pai.

  * __dataDir__

    __dataDir__ is the data directory in hdfs to be used.
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  * __outputDir__

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    __outputDir__ is the output directory in hdfs to be used in pai, the stdout and stderr files are stored in the directory after job finished.
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* __trial(kubeflow)__
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  * __codeDir__
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    __codeDir__ is the local directory where the code files in.
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  * __ps(optional)__
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    __ps__ is the configuration for kubeflow's tensorflow-operator.

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    * __replicas__
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      __replicas__ is the replica number of __ps__ role.
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    * __command__
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      __command__ is the run script in __ps__'s container.
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    * __gpuNum__
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      __gpuNum__ set the gpu number to be used in __ps__ container.
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    * __cpuNum__
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      __cpuNum__ set the cpu number to be used in __ps__ container.
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    * __memoryMB__
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      __memoryMB__ set the memory size of the container.
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    * __image__
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      __image__ set the image to be used in __ps__.
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  * __worker__
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    __worker__ is the configuration for kubeflow's tensorflow-operator.

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    * __replicas__
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      __replicas__ is the replica number of __worker__ role.
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    * __command__
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      __command__ is the run script in __worker__'s container.
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    * __gpuNum__
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      __gpuNum__ set the gpu number to be used in __worker__ container.
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    * __cpuNum__
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      __cpuNum__ set the cpu number to be used in __worker__ container.
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    * __memoryMB__
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      __memoryMB__ set the memory size of the container.
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    * __image__
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      __image__ set the image to be used in __worker__.
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* __machineList__
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  __machineList__ should be set if __trainingServicePlatform__ is set to remote, or it should be empty.
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  * __ip__
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    __ip__ is the ip address of remote machine.

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  * __port__
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    __port__ is the ssh port to be used to connect machine.

     Note: if users set port empty, the default value will be 22.
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  * __username__
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    __username__ is the account of remote machine.
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  * __passwd__
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    __passwd__ specifies the password of the account.
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  * __sshKeyPath__

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    If users use ssh key to login remote machine, could set __sshKeyPath__ in config file. __sshKeyPath__ is the path of ssh key file, which should be valid.
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    Note: if users set passwd and sshKeyPath simultaneously, NNI will try passwd.

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  * __passphrase__

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    __passphrase__ is used to protect ssh key, which could be empty if users don't have passphrase.

* __kubeflowConfig__:
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  * __operator__
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    __operator__ specify the kubeflow's operator to be used, NNI support __tf-operator__ in current version.
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  * __storage__
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    __storage__ specify the storage type of kubeflow, including {__nfs__, __azureStorage__}. This field is optional, and the default value is __nfs__. If the config use azureStorage, this field must be completed.
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  * __nfs__
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    __server__ is the host of nfs server

    __path__ is the mounted path of nfs
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  * __keyVault__
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    If users want to use azure kubernetes service, they should set keyVault to storage the private key of your azure storage account. Refer: https://docs.microsoft.com/en-us/azure/key-vault/key-vault-manage-with-cli2
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    * __vaultName__

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      __vaultName__ is the value of `--vault-name` used in az command.
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    * __name__
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      __name__ is the value of `--name` used in az command.
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  * __azureStorage__
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    If users use azure kubernetes service, they should set azure storage account to store code files.

    * __accountName__
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      __accountName__ is the name of azure storage account.

    * __azureShare__
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      __azureShare__ is the share of the azure file storage.

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* __paiConfig__

  * __userName__
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    __userName__ is the user name of your pai account.

  * __password__
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    __password__ is the password of the pai account.
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  * __host__
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    __host__ is the host of pai.

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<a name="Examples"></a>
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## Examples
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* __local mode__

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  If users want to run trial jobs in local machine, and use annotation to generate search space, could use the following config:
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  ```yaml
  authorName: test
  experimentName: test_experiment
  trialConcurrency: 3
  maxExecDuration: 1h
  maxTrialNum: 10
  #choice: local, remote, pai, kubeflow
  trainingServicePlatform: local
  #choice: true, false
  useAnnotation: true
  tuner:
    #choice: TPE, Random, Anneal, Evolution
    builtinTunerName: TPE
    classArgs:
      #choice: maximize, minimize
      optimize_mode: maximize
    gpuNum: 0
  trial:
    command: python3 mnist.py
    codeDir: /nni/mnist
    gpuNum: 0
  ```

  You can add assessor configuration.

  ```yaml
  authorName: test
  experimentName: test_experiment
  trialConcurrency: 3
  maxExecDuration: 1h
  maxTrialNum: 10
  #choice: local, remote, pai, kubeflow
  trainingServicePlatform: local
  searchSpacePath: /nni/search_space.json
  #choice: true, false
  useAnnotation: false
  tuner:
    #choice: TPE, Random, Anneal, Evolution
    builtinTunerName: TPE
    classArgs:
      #choice: maximize, minimize
      optimize_mode: maximize
    gpuNum: 0
  assessor:
    #choice: Medianstop
    builtinAssessorName: Medianstop
    classArgs:
      #choice: maximize, minimize
      optimize_mode: maximize
    gpuNum: 0
  trial:
    command: python3 mnist.py
    codeDir: /nni/mnist
    gpuNum: 0
  ```

  Or you could specify your own tuner and assessor file as following,

  ```yaml
  authorName: test
  experimentName: test_experiment
  trialConcurrency: 3
  maxExecDuration: 1h
  maxTrialNum: 10
  #choice: local, remote, pai, kubeflow
  trainingServicePlatform: local
  searchSpacePath: /nni/search_space.json
  #choice: true, false
  useAnnotation: false
  tuner:
    codeDir: /nni/tuner
    classFileName: mytuner.py
    className: MyTuner
    classArgs:
      #choice: maximize, minimize
      optimize_mode: maximize
    gpuNum: 0
  assessor:
    codeDir: /nni/assessor
    classFileName: myassessor.py
    className: MyAssessor
    classArgs:
      #choice: maximize, minimize
      optimize_mode: maximize
    gpuNum: 0
  trial:
    command: python3 mnist.py
    codeDir: /nni/mnist
    gpuNum: 0
  ```
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* __remote mode__

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  If run trial jobs in remote machine, users could specify the remote mahcine information as fllowing format:

  ```yaml
  authorName: test
  experimentName: test_experiment
  trialConcurrency: 3
  maxExecDuration: 1h
  maxTrialNum: 10
  #choice: local, remote, pai, kubeflow
  trainingServicePlatform: remote
  searchSpacePath: /nni/search_space.json
  #choice: true, false
  useAnnotation: false
  tuner:
    #choice: TPE, Random, Anneal, Evolution
    builtinTunerName: TPE
    classArgs:
      #choice: maximize, minimize
      optimize_mode: maximize
    gpuNum: 0
  trial:
    command: python3 mnist.py
    codeDir: /nni/mnist
    gpuNum: 0
  #machineList can be empty if the platform is local
  machineList:
    - ip: 10.10.10.10
      port: 22
      username: test
      passwd: test
    - ip: 10.10.10.11
      port: 22
      username: test
      passwd: test
    - ip: 10.10.10.12
      port: 22
      username: test
      sshKeyPath: /nni/sshkey
      passphrase: qwert
  ```
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* __pai mode__

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  ```yaml
  authorName: test
  experimentName: nni_test1
  trialConcurrency: 1
  maxExecDuration:500h
  maxTrialNum: 1
  #choice: local, remote, pai, kubeflow
  trainingServicePlatform: pai
  searchSpacePath: search_space.json
  #choice: true, false
  useAnnotation: false
  tuner:
    #choice: TPE, Random, Anneal, Evolution, BatchTuner
    #SMAC (SMAC should be installed through nnictl)
    builtinTunerName: TPE
    classArgs:
      #choice: maximize, minimize
      optimize_mode: maximize
  trial:
    command: python3 main.py
    codeDir: .
    gpuNum: 4
    cpuNum: 2
    memoryMB: 10000
    #The docker image to run NNI job on pai
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    image: msranni/nni:latest
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    #The hdfs directory to store data on pai, format 'hdfs://host:port/directory'
    dataDir: hdfs://10.11.12.13:9000/test
    #The hdfs directory to store output data generated by NNI, format 'hdfs://host:port/directory'
    outputDir: hdfs://10.11.12.13:9000/test
  paiConfig:
    #The username to login pai
    userName: test
    #The password to login pai
    passWord: test
    #The host of restful server of pai
    host: 10.10.10.10
  ```
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* __kubeflow mode__
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  kubeflow with nfs storage.

  ```yaml
  authorName: default
  experimentName: example_mni
  trialConcurrency: 1
  maxExecDuration: 1h
  maxTrialNum: 1
  #choice: local, remote, pai, kubeflow
  trainingServicePlatform: kubeflow
  searchSpacePath: search_space.json
  #choice: true, false
  useAnnotation: false
  tuner:
    #choice: TPE, Random, Anneal, Evolution
    builtinTunerName: TPE
    classArgs:
      #choice: maximize, minimize
      optimize_mode: maximize
  trial:
    codeDir: .
    worker:
      replicas: 1
      command: python3 mnist.py
      gpuNum: 0
      cpuNum: 1
      memoryMB: 8192
      image: msranni/nni:latest
  kubeflowConfig:
    operator: tf-operator
    nfs:
      server: 10.10.10.10
      path: /var/nfs/general
  ```

  kubeflow with azure storage

  ```yaml
  authorName: default
  experimentName: example_mni
  trialConcurrency: 1
  maxExecDuration: 1h
  maxTrialNum: 1
  #choice: local, remote, pai, kubeflow
  trainingServicePlatform: kubeflow
  searchSpacePath: search_space.json
  #choice: true, false
  useAnnotation: false
  #nniManagerIp: 10.10.10.10
  tuner:
    #choice: TPE, Random, Anneal, Evolution
    builtinTunerName: TPE
    classArgs:
      #choice: maximize, minimize
      optimize_mode: maximize
  assessor:
    builtinAssessorName: Medianstop
    classArgs:
      optimize_mode: maximize
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    gpuNum: 0
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  trial:
    codeDir: .
    worker:
      replicas: 1
      command: python3 mnist.py
      gpuNum: 0
      cpuNum: 1
      memoryMB: 4096
      image: msranni/nni:latest
  kubeflowConfig:
    operator: tf-operator
    keyVault:
      vaultName: Contoso-Vault
      name: AzureStorageAccountKey
    azureStorage:
      accountName: storage
      azureShare: share01
  ```