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TwistedWave, an audio editor for mac.

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TwistedWave is the ideal tool for:

  • Recording. Open TwistedWave, press record. That is how easy it is to start recording a podcast, a song or a concert. While you are recording, place markers with a single key to remember places you will have to edit afterwards. It is truly a good tool for voice over artists.
  • Mastering. Equalization, compression, limiting, you name it.. From the hundreds of available Audio Unit or VST plugins, you will surely find the right one for the best effect.
  • Converting files. TwistedWave can read and write files in many different formats. Converting a single file, or a whole folder of audio files from one format to another is straightforward.
  • Batch processing many files. You load a list of sound files in TwistedWave, and it will automatically cut them, apply fades in/out, equalize, convert to mp3, or anything else.

Supported on macOS 10.9 up to macOS 11 Big Sur.
An update with native support for Apple Silicon, the M1 chip, is in the works. In the meantime, TwistedWave has been found to be working fine with Rosetta 2.
Still on macOS 10.7 or 10.8? You can use TwistedWave 1.20.2.
Still on macOS 10.6.8? You can use TwistedWave 1.19.1.
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Automatically detect silences

With a powerful built-in silence detector, TwistedWave makes it very easy to automatically split an audio file into several parts separated by silences, and save them in distinct files.

  • Detect the silences
  • Name the different parts
  • Export as individual files

Batch processing

TwistedWave now has a very powerful batch processing engine. It can work on any number of files, or entire file hierarchies, and apply any number of effects on them, such as amplifying, applying an Audio Unit or VST plugin or changing the frame rate, for instance.

A processed file can be saved in a different file format. Because TwistedWave can read and write in many different file formats, this makes a very powerful batch converter.

The batch processing can also be used to generate the waveform image from a list of files. This can be used to generate small images representing sound files to build a web site, for instance.

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ZTX Time Stretch/Pitch Shift technology

TwistedWave allows you to change the pitch or the speed of a piece of audio independently of each other.

This capability is provided with the ZTX Time Stretch/Pitch Shift technology, licensed from Zynaptiq GmbH, one of the most advanced algorithms for time-based manipulation of audio material available today. With an excellent audio quality, it is really usable for pro audio work.

The ZTX technology also enables TwistedWave to perform pitch correction. Given a piece of audio, ZTX will automatically pitch shift it to the closest note.

Make your own iPhone ringtones!

Load your own music, cut your favourite part, fade in and out, export to the iPhone ringtone format, and you're done!

Processes effects in the background

When TwistedWave is busy loading a large file, or applying a complex effect, all the work happens in the background, and you can continue working with your document, applying new effects to the wave. With TwistedWave, the time where you had to wait for your audio editor to perform a long computation is over. Read more.

Extensive Metadata support

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TwistedWave can read and save music metadata, such as the artist name, song title or album art from files in the aiff, wav, mp3, mp4, flac and ogg/vobis format.

Additionally, TwistedWave supports BWAV metadata, as well as Soundminer metadata for wav and aiff files. Furthermore, these metadata can be saved as foreign metadata in flac files.


Automatically fade in/out when copy/pasting

A special pasting mode will automatically fade in and out the clipboard and the existing contents of the file when pasting to make the transitions smoother.

A number of options enables you to select whether or not to apply fades in and out, the fades duration, and more. In order to immediately see how the fades are applied, a sketch shows a preview of the file, represented in blue, and the clipboard in red. The slopes show where the fades take place.


Rearrange your audio with the Clip List

Radio package editing becomes very easy with the clip list. In just a few steps, you can quickly zip through a long recording, select parts of the wave you are interested in and copy them to the clip list. You can then create a new document by pasting your clips from the list.

The clip list can also act as a playlist. You can reorder the clips, play them all..


Mastering made easy with the Effect Stacks

For a successful mastering, it is often necessary to apply more than one effect to a song. With a regular audio editor, you have to apply the effects one by one, and you can't use different presets for an effect without undoing it, and all the effects you applied after it.

With TwistedWave, it is possible to load any number of Audio Unit or VST plugins in an effect stack. This allows you to preview all of them, adjust the settings of one effect independently of the other, change the order in which they are applied..

Blazing fast interface

Zooming in and out of the waveform is very fast. Command-click and drag the mouse to zoom very accurately, while the wave is being refreshed more than 100 times per second. Even when the files are several hours long, when the file has not finished loading, or when an effect is being applied, TwistedWave remains very responsive.

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Unlimited and instant Undo/Redo.

At any time, you can undo all the modifications you have made to your file. You can freely experiment with new effects without fear of making mistakes!

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TwistedWave can handle your audio at a resolution up to 32-bit and 192 kHz sampling rate, which makes it truly a professional quality audio editor.

With the ZTX Time Stretch/Pitch Shift technology, you can achieve the best sounding time/pitch manipulation available in the industry.


Import and export many audio file formats

TwistedWave works great as an audio converter. It is able to read and export sound files in many formats, including: wav, aiff, au, snd, sd2, mpg, mp2, mp3, mp4, m4r (iPhone ringtones), m4a (iTunes), m4b (audiobooks), aac, caf, flac, ogg/vorbis, wma, WavPack, Wave64. Caves of qud cracked. Euro truck simulator 2 map booster crack. It is also possible to import the sound track from a movie in mov, avi, flv (Flash Video), wmv or mpeg format.

When you are working on an audiobook or a podcast, TwistedWave automatically converts the markers as chapters in the file, and back. The chapters are perfectly recognized by iTunes and the iPod. They make it very convenient to jump from one part of the file to the next, or seeing what chapter is currently being played.

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TwistedWave can also read and save Ambisonic B-Format (amb or ambi) sound files, produced by many popular multichannel audio recorders.

Multichannel audio editing software

TwistedWave handles multichannel files as easily as mono or stereo files. Multichannel Audio Unit or VST plugins can be applied to files with an arbitrary number of channels.

This example shows how to generate an IEEE® 802.11ac™ transmission containing MAC frames suitable for performing radio packet error rate (PER) receiver tests.

Introduction

WLAN Toolbox™ can be used to generate standard compliant waveforms for performing receiver tests. A basic WLAN receiver test scenario is shown in the diagram below.

The device under test (DUT) is stimulated with RF test vectors, usually through a wired link. The packet error rate (PER) is a metric used to test the performance of a receiver at a given receive signal power in the presence of noise, interference, or other impairments. The PER is defined as the number of incorrectly decoded packets divided by the total number of transmitted packets.

The frame check sequence (FCS) within a MAC frame is used to determine whether a MAC frame has been decoded correctly by the receiver, and therefore whether the packet has been received in error. The general MAC frame for IEEE 802.11ac contains the following fields:

  • MAC header

  • Frame body

  • FCS

The data to transmit from a higher layer is contained within the frame body of the MAC frame. The transmitter uses a cyclic redundancy check over the MAC header and frame body field to generate the FCS value. The receiver calculates the CRC and compares this to the received FCS field to determine if an error has occurred during transmission.

In this example an IEEE 802.11ac waveform consisting of multiple VHT format packets is generated. The wlanWaveformGenerator function can be used to generate a waveform containing one or more packets. The wlanWaveformGenerator function consumes physical layer service data units (PSDUs) for each packet and performs the appropriate physical layer processing to create the waveform. A PSDU containing a MAC header and valid FCS can be generated using the wlanMACFrame function. In this example a multi-packet baseband waveform containing MAC packets is synthesized. This waveform may be downloaded to a signal generator for RF transmission and used for receiver PER testing. Source code is provided to download and play the waveform using a Keysight Technologies™ N5172B signal generator. The example processing is illustrated in the following diagram:

IEEE 802.11ac VHT Format Configuration

The format-specific configuration of a VHT waveform synthesized with the wlanWaveformGenerator function is described by the VHT format configuration object, wlanVHTConfig. The properties of the object contain the configuration. In this example an object is configured for a 160 MHz bandwidth, 1 transmit antenna, 1 space-time stream and QPSK rate 1/2 (MCS 1).

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Waveform Generation Configuration

The wlanWaveformGenerator function can be configured to generate one or more packets and add an idle time between each packet. In this example four packets with a 20 microsecond idle period will be created.

The PSDU transmitted in each packet is scrambled using a random seed for each packet. This is accomplished by specifying a vector of scrambler initialization seeds. The valid range of the seed is between 1 and 127 inclusive.

Create a PSDU for Each Packet

For an IEEE 802.11ac data transmission the MAC frame is termed a MAC protocol data unit (MPDU), the MAC header is termed the MPDU header, and the frame body is an aggregated MAC service data unit (A-MSDU). One or more MPDUs are delimited, padded and aggregated to create an aggregated MPDU (A-MPDU). The A-MPDU is delimited and padded to form the physical layer service data unit (PSDU) which is coded and modulated to create the transmitted packet. This process of encapsulation is shown in the following diagram:

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In this example a PSDU is created containing a single MPDU for each packet. The MPDU consists of an MPDU header, A-MSDU frame containing concatenated A-MSDU subframes with random data and valid FCS. The wlanMACFrame function creates an A-MPDU with EOF delimiters and padding, i.e. the PSDU, as specified in [ 1 ]. It also returns the length of the A-MPDU, termed as the APEP Length, which is used to set the APEPLength property of the VHT configuration object. A PSDU is generated for each packet and is concatenated into a vector data for transmission with the wlanWaveformGenerator function. The processing to create the concatenated PSDU bits data is shown in the diagram below:

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Generate a Baseband Waveform

The concatenated PSDU bits for all packets, data, are passed as an argument to the wlanWaveformGenerator function along with the VHT packet configuration object vhtCfg. This configures the waveform generator to synthesize an 802.11ac VHT waveform. To generate 802.11n™ HT or other format waveforms, use a different format configuration object, for example wlanHTConfig or wlanNonHTConfig. The waveform generator is additionally configured using name-value pairs to generate multiple packets with a specified idle time between packets, and initial scrambler states.

The magnitude of the baseband waveform is displayed below. Note the number of packets and idle time configured.

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The frequency spectrum of the generated time domain waveform, txWaveform, can be viewed using the DSP System Toolbox™dsp.SpectrumAnalyzer. As expected, the 160 MHz signal bandwidth is clearly visible at baseband.

Generate an Over-the-Air Signal Using an RF Signal Generator

The baseband waveform created by WLAN Toolbox can now be downloaded to a signal generator to perform receiver tests. Instrument Control Toolbox™ is used to generate an RF signal with a center frequency of 5.25 GHz RF using the Keysight Technologies N5172B signal generator.

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Selected Bibliography

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  1. IEEE Std 802.11ac™-2013 IEEE Standard for Information technology - Telecommunications and information exchange between systems - Local and metropolitan area networks - Specific requirements - Part 11: Wireless LAN Medium Access Control (MAC) and Physical Layer (PHY) Specifications - Amendment 4: Enhancements for Very High Throughput for Operation in Bands below 6 GHz.