PIPython
The PIPython package is a collection of Python modules for the communication with PI controllers and for processing GCS data. PIPython is compatible with Python 3.12+ on Windows, Linux, and OS X, and without the GCS DLL on any other platform as well.
Installation
By installing PIPython you agree to the license agreement.
In the command window of the PC, enter the following command: pip install PIPython
Additionally, a samples folder is provided in the source distribution or can be downloaded from GitHub.
Any questions?
If you have any questions, don't hesitate – just send an e-mail to
service@pi.de. We also appreciate your feedback.
Quick Start
Requirements
Download these python packages with pip install:
- PyUSB
- PySocket
- PySerial
Using pipython.interfaces.piusb, you can connect to a USB device without needing the GCS DLL. This only works on Linux and requires libusb, which comes with most Linux distributions.
Establishing communication
Communication with a PI device can be established via the GCSDevice class which wraps the GCS DLL functions and provides methods to connect to the device. Instantiate GCSDevice with the controller's product code up to the period as a string type argument (e.g., 'C-884').
See Device Connection for further information.
The following example connects to a C-884 series controller, queries its identification string using the qIDN() function and closes the connection.
from pipython import GCSDevice
pidevice = GCSDevice('C-884')
pidevice.InterfaceSetupDlg()
print(pidevice.qIDN())
pidevice.CloseConnection()
GCSDevice is a context manager which closes the connection if an exception is raised inside the with statement. Thus, the example above should rather be written this way:
from pipython import GCSDevice
with GCSDevice('C-884') as pidevice:
pidevice.InterfaceSetupDlg()
print(pidevice.qIDN())
pidevice.CloseConnection()
See also quickstart.py, as well as the other examples in the samples subdirectory.
Arguments
Setter functions
GCS 2.0
Setter functions can be called with the following argument structures:
- a comma-separated dictionary of axes/channels and values
- a comma-separated list of axes/channels and a list of the corresponding values
- a single axis/channel and a single value
pidevice.MOV({'X': 1.23, 'Y': 2.34})
pidevice.MOV(['X', 'Y'], [1.23, 2.34])
pidevice.MOV('X', 1.23)
For numeric axis or channel identifiers, the quotes may be omitted.
pidevice.MOV({1: 1.23, 2: 2.34})
pidevice.MOV([1, 2], [1.23, 2.34])
pidevice.MOV(1, 1.23)
GCS 3.0
Setter functions can be called with the following argument structures:
- a comma-separated dictionary of axes and values
- a comma-separated list of axes and a list of the corresponding values
- a single axis and a single value
pidevice.MOV({'AXIS_1': 1.23, 'AXIS_2': 2.34})
pidevice.MOV(['AXIS_1', 'AXIS_2'], [1.23, 2.34])
pidevice.MOV('AXIS_1', 1.23)
Getter functions
Getter functions can be called with the following argument structures:
GCS 2.0
- a comma-separated list of axes/channels
- a single axis/channel
- no arguments, which will return the answer for all available axes/channels
For numeric axis or channel identifiers, the quotes may be omitted.
pidevice.qPOS(['X', 'Y'])
pidevice.qPOS('X')
pidevice.qPOS(1)
pidevice.qPOS()
GCS 3.0
- a single axis
- no arguments, which will return the answer for all available axes or channels
pidevice.qPOS('AXIS_1')
pidevice.qPOS()
Return values
GCS 2.0
Axes or channel related answers are returned as (ordered) dictionary.
pidevice.qPOS()
>> {'X': 1.23, 'Y': 2.34}
If a getter function is called with arguments, the data types of the arguments are preserved and can be used as keys.
pos = pidevice.qPOS([1, 2, 3])
print(pos[1])
GCS 3.0
Axes or channel related answers are returned as (ordered) dictionary.
pidevice.qPOS()
>> {'AXis_1': 1.23}
If a getter function is called with arguments, the data types of the arguments are preserved and can be used as keys.
pos = pidevice.qPOS('AXIS_1') # only one axis is possible
print(pos['AXIS_1'])
GCS 2.0 / GCS 3.0
The following example moves all axes to their respective targets and waits until each motion has finished. It shows how to use only the values from the returned dictionary.
from time import sleep
# [...]
pidevice.MOV(axes, targets)
while not all(list(pidevice.qONT(axes).values())):
sleep(0.1)
Some useful information
Helper functions
With pipython.pitools you have some helper functions at hand that make coding more convenient. With waitontarget() for instance, the example above can be written like this:
from pipython import pitools
# [...]
pidevice.MOV(axes, targets)
pitools.waitontarget(pidevice, axes)
See also the examples in the samples subdirectory.
Debug logging
To log debug messages on the console just enter these lines prior to calling GCSDevice.
from pipython import PILogger, DEBUG, INFO, WARNING, ERROR, CRITICAL
PILogger.setLevel(DEBUG)
GCSError and error check
By default an "ERR?" command is sent after each command to query if an error occurred on the device which then will be raised as GCSError exception. If communication speed is an issue you can disable error checking:
pidevice.errcheck = False
For the handling of GCSError exceptions you can use the defines provided by gcserror instead of pure numeric values. The difference between the two is:
GCSError: exception classgcserror: corresponding module
from pipython import GCSDevice, GCSError, gcserror
with GCSDevice('C-884') as pidevice:
try:
pidevice.MOV('X', 1.23)
except GCSError as exc:
if exc == gcserror.E_1024_PI_MOTION_ERROR:
print('There was a motion error, please check the mechanics.')
else:
raise
The exception class GCSError translates the error code in a readable message.
from pipython import GCSError, gcserror
raise GCSError(gcserror.E_1024_PI_MOTION_ERROR)
>>> GCSError: Motion error: position error too large, servo is switched off automatically (-1024)
GCS 3.0 You can reset the error state of one or more axes like this:
for axis in device.axes:
if axis_has_error(device):
while check_axis_status_bit(device, axis, AXIS_STATUS_FAULT_REACTION_ACTIVE):
pass
print('reset axis error: ', axis)
device.RES(axis)
Big data
Commands like qDRR() (GCS 2.0) or qREC_DAT() (GCS 3.0) which read a large amount of GCS data, return immediately with the header dictionary containing information about the data. Then they start a background task that carries on reading data from the device into an internal buffer. The bufstate property returns the progress of the read process as a floating point number (range 0 to 1) and becomes True when reading has finished. Hence, when using it in a loop, check for is not True. (Remember, this is not the same as != True.)
- GCS 2.0
header = pidevice.qDRR(1, 1, 8192)
while pidevice.bufstate is not True:
print('read data {:.1f}%...'.format(pidevice.bufstate * 100))
sleep(0.1)
data = pidevice.bufdata
- GCS 3.0
header = pidevice.qREC_DAT('REC_1', 'ASCII', 1, 1, 8192)
while pidevice.bufstate is not True:
print('read data {:.1f}%...'.format(pidevice.bufstate * 100))
sleep(0.1)
data = pidevice.bufdata
Textual interface
In addition to using the functions implemented in GCSCommands you can send GCS commands as strings to the controller. Use
read()for commands returning a responseread_gcsdata()for commands returning GCS datasend()for non-responding commands
print(pidevice.read('POS?'))
print(pidevice.read_gcsdata('DRR? 1 100 1'))
pidevice.send('MOV X 1.23')
The commands return the raw string or GCS data from the controller. If errorcheck is activated the device is automatically queried for its error state. We recommend to use the provided functions instead of sending raw strings.
In line with the C++ GCS DLL the functions ReadGCSCommand() and GcsCommandset() are also available. They don't query the device for errors.
print(pidevice.ReadGCSCommand('POS?'))
pidevice.GcsCommandset('MOV X 1.23')
Device Connection
Connecting to a single device with the GCS DLL
Via dialog
On Windows systems, the GCS DLL provides a graphical user interface to select the connection parameters.
from pipython import GCSDevice
with GCSDevice() as pidevice:
pidevice.InterfaceSetupDlg()
print('connected: {}'.format(pidevice.qIDN().strip()))
If you pass a string as the optional key argument to the InterfaceSetupDlg method, the DLL stores the settings in the Windows registry and retrieves them the next time you connect with the same key.
from pipython import GCSDevice
with GCSDevice() as pidevice:
pidevice.InterfaceSetupDlg('MyTest')
print('connected: {}'.format(pidevice.qIDN().strip()))
Via device identification
There are functions to scan for available devices:
| Interface | Function |
|---|---|
| USB | EnumerateUSB(mask='') |
| TCP/IP | EnumerateTCPIPDevices(mask='') |
Use mask (= string) to limit the number of devices to be found. If it is contained in the device identification, the device is found (see qIDN).
from pipython import GCSDevice
with GCSDevice() as pidevice:
devices = pidevice.EnumerateTCPIPDevices(mask='C-884.4DB')
for i, device in enumerate(devices):
print('{} - {}'.format(i, device))
item = int(input('Select device to connect:'))
pidevice.ConnectTCPIPByDescription(devices[item])
print('connected: {}'.format(pidevice.qIDN().strip()))
Via dedicated interface
You can connect to a device via the following interfaces using the corresponding methods:
| Interface | Method |
|---|---|
| RS-232 | ConnectRS232(comport, baudrate) |
| USB | ConnectUSB(serialnum)serialnum = the serial number of the device as a string or the device identification returned by the EnumerateUSB method |
| USB via virtual COM port | ConnectRS232(comport, baudrate) |
| TCP/IP | ConnectTCPIP(ipaddress, ipport=50000) |
| TCP/IP | ConnectTCPIPByDescription(description)description = string returned by the EnumerateTCPIPDevices method |
| NI GPIB | ConnectNIgpib(board, device) |
| PCI board | ConnectPciBoard(board) |
USB connection on Windows
All PI USB controllers support a native USB connection using the
ConnectUSB()function.
Some PI USB controllers support also a connection via a virtual COM port using theConnectRS232()function.
USB connection on Linux
Some PI USB controllers only support a native USB connection using the
ConnectUSB()function.
For information about which controllers only support a native USB connection, call theEnumerateUSB()function. Some PI USB controllers only support a connection via a virtual COM port using theConnectRS232()function (for example, with/dev/ttyUSB0ascomport). TheEnumerateUSB()function does not return these controllers.
from pipython import GCSDevice
with GCSDevice() as pidevice:
pidevice.ConnectUSB(serialnum = '123456789')
print('connected: {}'.format(pidevice.qIDN().strip()))
Connecting to devices in a daisy chain network
Open the interface to the daisy chain master device (i.e., the device connected to the PC), then connect all devices of the daisy chain network to this interface.
In a daisy chain network, each device must have a unique address (= device ID). There must be one device with the address 1, though this device does not have to be the master device (see controller manual on how to change the address of a device).
Use the following methods to connect to the master device in a daisy chain network:
| Interface | Method |
|---|---|
| RS-232 | OpenRS232DaisyChain(comport, baudrate) |
| USB | OpenUSBDaisyChain(serialnum) |
| TCP/IP | OpenTCPIPDaisyChain(ipaddress, ipport=50000) |
In the following example, three controllers are connected:
- C-863 controller as the master device, address 3
- E-861 controller, address 7
- C-867 controller, address 1
from pipython import GCSDevice
with GCSDevice() as c863:
c863.OpenRS232DaisyChain(comport=1, baudrate=115200)
# c863.OpenUSBDaisyChain(description='1234567890')
# c863.OpenTCPIPDaisyChain(ipaddress='192.168.178.42')
daisychainid = c863.dcid
c863.ConnectDaisyChainDevice(3, daisychainid)
with GCSDevice() as e861:
e861.ConnectDaisyChainDevice(7, daisychainid)
with GCSDevice() as c867:
c867.ConnectDaisyChainDevice(1, daisychainid)
print('\n{}:\n{}'.format(c863.GetInterfaceDescription(), c863.qIDN()))
print('\n{}:\n{}'.format(e861.GetInterfaceDescription(), e861.qIDN()))
print('\n{}:\n{}'.format(c867.GetInterfaceDescription(), c867.qIDN()))
Connecting via low-level interface
The preferred method to connect to devices is GCSDevice using the GCS DLL. On platforms where the GCS DLL is not available, low-level functions of the PIPython package can be used instead.
| Interface | Method |
|---|---|
| RS-232 | PISerial(comport, baudrate) |
| USB | PIUSB(serialnum) |
| USB via virtual COM port | PISerial(virtual_comport, baudrate) |
| TCP/IP | PISocket(ipaddress, ipport=50000) |
USB connection on Windows
A USB connection using
PIUSB()is not supported on Windows.
Some PI USB controllers support a connection via a virtual COM port using thePISerial()function. Only these controllers are supported on Windows.
USB connection on Linux
Some PI USB controllers only support a native USB connection using
PIUSB()and some PI USB controllers only support a connection via a virtual COM port usingPISerial()(e.g., with/dev/ttyUSB0ascomport).
If one method does not work, please try the other method.
PISerial
- Windows
from pipython.pidevice.gcscommands import GCSCommands
from pipython.pidevice.gcsmessages import GCSMessages
from pipython.pidevice.interfaces.piserial import PISerial
with PISerial(port='COM1', baudrate=115200) as gateway:
messages = GCSMessages(gateway)
with GCSCommands(messages) as pidevice:
print(pidevice.qIDN())
- Linux
from pipython.pidevice.gcscommands import GCSCommands
from pipython.pidevice.gcsmessages import GCSMessages
from pipython.pidevice.interfaces.piserial import PISerial
with PISerial(port='/dev/ttyS0', baudrate=115200) as gateway:
messages = GCSMessages(gateway)
with GCSCommands(messages) as pidevice:
print(pidevice.qIDN())
PIUSB
- Windows:
PIUSB()is not supported on Windows. - Linux:
from pipython.pidevice.gcscommands import GCSCommands
from pipython.pidevice.gcsmessages import GCSMessages
from pipython.pidevice.interfaces.piusb import PIUSB
with PIUSB() as gateway:
gateway.connect(serialnumber='1234567890', pid=0x1234)
messages = GCSMessages(gateway)
with GCSCommands(messages) as pidevice:
print(pidevice.qIDN())
PISocket
from pipython.pidevice.gcscommands import GCSCommands
from pipython.pidevice.gcsmessages import GCSMessages
from pipython.pidevice.interfaces.pisocket import PISocket
with PISocket(host='192.168.178.42', port=50000) as gateway:
messages = GCSMessages(gateway)
with GCSCommands(messages) as pidevice:
print(pidevice.qIDN())
Connecting to unknown devices
If GCSDevice is called with the controller name, the corresponding GCS DLL is chosen automatically. For unknown devices, a dedicated GCS DLL can be used instead.
from pipython import GCSDevice
with GCSDevice(gcsdll='PI_GCS2_DLL.dll') as pidevice:
pidevice.InterfaceSetupDlg()
Feature Version History
PIPython 2.12.0
- add GCSCommands.LNK_USR()
- add GCSCommands.qLNK_USER()
- add GCSCommands.LNK_UDEL()
- add GCSCommands.qLNK_PRE()
- add GCSCommands.TRG_ENABLE()
- add GCSCommands.TRG_DISABLE()
- add GCSCommands.qTRG_STATE()
PIPython 2.11.0
- add GCSCommands.FDL()
PIPython 2.10.1
- fix 'segmentation fault' which occurred on Linux while unloading the GCSDll class
PIPython 2.10.0
- add GCSCommands.STF()
- add new status bits returned by GCSCommands.STV().
PIPython 2.9.0
- add support for open loop control mode in pitools
- fix bug in simplemove sample.
PIPython 2.8.0
- add pitools.getmaxtravelrange()
- add pitools.getmintravelrange()
PIPython 2.7.0
- add GCSCommands.qIPR()
- add GCSCommands.RES()
- add PILogger
PIPython 2.6.0
- add support for GCS 3.0 controllers
- add data recorder tools for controllers with GCS 3.0 syntax
PIPython 2.5.1
- fix missing files in pitools
PIPython 2.5.0
- Support for GCS30 UMF Controllers
PIPython 2.4.0
- add GCSCommands.qUSG()
- add GCSCommands.SPV()
- add GCSCommands.qSPV()
- add GCSCommands.CPA()
- add GCSCommands.UCL()
- add GCSCommands.qUCL()
- add GCSCommands.REC_STAT()
- add GCSCommands.qREC_STAT()
- add GCSCommands.REC_TRACE()
- add GCSCommands.qREC_TRACE()
- add GCSCommands.REC_TRG()
- add GCSCommands.qREC_TRG()
- add GCSCommands.REC_RATE()
- add GCSCommands.qREC_RATE()
- add GCSCommands.REC_START()
- add GCSCommands.REC_STOP()
- add GCSCommands.qREC_NUM()
- add GCSCommands.qREC_DAT()
- add GCSCommands.qLOG()
PIPython 2.3.0
- Internal refactoring
PIPython 2.2.2
- fix: No module named gcs30.gcs30commands_helpers
PIPython 2.2.1
- fix missing argument in isgcs30
PIPython 2.2.0
- Support for PI_SetConnectTimeout() and PI_EnableBaudRateScan()
PIPython 2.1.1
- fix timing problems while reading the data recorder with python3
PIPython 2.1.0
- pipython.datarectools.Datarecorder: maxnumvalues now also reads the maximum number of data recorder points from the 'HDR?' answer.
- fix pipython.pitools.pitoopls.itemstostr. If 'data' is an integer of 0 or a float of 0.0 'itemstostr' now returns the string '0' or '0.0' instead of 'None'
PIPython 2.0.0
- New package structure
- support for WriteConfigurationFromDatabaseToControllerAndSave()
PIPython 1.5.2
- Linux: fix string decoding in piusb
PIPython 1.5.1
- fix parameter value conversion of hex parameter values
PIPython 1.5.0
- add GCSCommands.POL()
- add GCSCommands.STD()
- add GCSCommands.RTD()
- add GCSCommands.qRTD()
- add GCSCommands.qLST()
- add GCSCommands.DTL()
PIPython 1.4.0
- fix string decoding in GCSDll()
- add pitools.getservo()
- pitools.waitonreferencing() does not call waitontarget()
- in pitools call waitonready() with the "polldelay" argument
- fix signature of GCSCommands.qTWS()
- GCSCommands.CCL() will reset the list of supported GCS commands
- interfaces.pisocket.PISocket() uses socket.TCP_NODELAY
- add "ATZ" as "referencing command" to pitools.DeviceStartup()
- add GCSMessages.logfile property
- rename license.md to eula.md
- add datarectools.get_hdr_options()
- add Datarecorder.recopts property
- add Datarecorder.trigopts property
- all timeout default values are set to 300 seconds
PIPython 1.3.9
- add pitools.waitonmacro()
- catch GCS error 2 (unknown command) after EAX during startup
- GCS commands arguments can be sets, too
- DDL(tables, offsets, values) -> DDL(table, offsets, values)
- add GCSDevice.isavailable
- convert parameter values according to types in qHPA answer
- fix signature of GCSCommands.qJLT()
PIPython 1.3.8
- add interfaces.piusb
- add pitools.readgcsarray()
- add pitools.waitonwavegen()
- add pitools.moveandwait()
- add piparams.applyconfig()
- pitools.startup() defines and references stages only if necessary
- add GCSCommands.allaxes
- add GCSDevice.hasref()
- add GCSDevice.haslim()
- add GCSDevice.canfrf()
- add GCSDevice.canfnl()
- add GCSDevice.canfpl()
- add pitools.waitonphase()
- add pitools.setservo()
- controller specific startup sequence
PIPython 1.3.7
- add pitools.movetomiddle()
- add pipython.fastaligntools
- PI_GCS2_DLL is used by default
- add pitools.savegcsarray()
- add pitools.itemstostr()
PIPython 1.3.6
- add controller C-886, E-872
- GCSDevice supports external Gateway
PIPython 1.3.5
- add DLL functions for PIStages3
- "wait on" functions support polldelay times
- fix GCSCommands.SGA()
- fix GCSCommands.qSPA()
- fix GCSCommands.qSEP()
- add optional argument "noraise" for StopAll(), HLT(), STP()
- add pitools.waitonfastalign()
- add pitools.waitonautozero()
- add GCS Error codes
PIPython 1.3.4
- add pipython.interfaces.piserial
- "wait on" functions support predelay and postdelay times
- add GCSCommands.TSP()
- setup writes key for PIUpdateFinder always into 32 bit part of registry
- change formatting of numbers in GCS strings
- GCSDll supports "K" devices
- GCSMessages.bufstate will not write to log
- rename ReadGCSData() -> read_gcsdata()
- add controller C-663.12
- add parameters for E-873.3QTU, C-663.10C885
- add GCS Error codes
- bugfix
PIPython 1.3.3
- add GCSCommands.SGP()
- add GCSCommands.qSGP()
- add GCSCommands.WAV_SIN()
- add GCSCommands.WAV_POL()
- add GCSCommands.WAV_TAN()
- add GCSCommands.WAV_SWEEP()
- add GCSCommands.checkerror()
- add GCSCommands.DEL()
- add new controllers
- add controller parameters
- fix for handling Unicode in Python 3
- bugfix of some GCS commands
PIPython 1.3.2
- add GCSCommands.FSF()
- add GCSCommands.qFSF()
- add GCSCommands.qFSR()
- add pitools.getaxeslist()
- add pitools.ontarget()
- add pitools.waitonwalk()
- add pitools.waitonoma()
- add pitools.waitontrajectory()
- fix DLL function prefix
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