The current application claims priority to U.S. patent application Ser. No. 16/275,197, entitled “Systems and Methods for Podcast Playback,” filed Feb. 13, 2019, the disclosure of which is hereby incorporated by reference in its entirety for all purposes.
The present disclosure is related to consumer goods and, more particularly, to methods, systems, products, features, services, and other elements directed to media playback or some aspect thereof.
Options for accessing and listening to digital audio in an out-loud setting were limited until in 2002, when SONOS, Inc. began development of a new type of playback system. Sonos then filed one of its first patent applications in 2003, entitled “Method for Synchronizing Audio Playback between Multiple Networked Devices,” and began offering its first media playback systems for sale in 2005. The Sonos Wireless Home Sound System enables people to experience music from many sources via one or more networked playback devices. Through a software control application installed on a controller (e.g., smartphone, tablet, computer, voice input device), one can play what she wants in any room having a networked playback device. Media content (e.g., songs, podcasts, video sound) can be streamed to playback devices such that each room with a playback device can play back corresponding different media content. In addition, rooms can be grouped together for synchronous playback of the same media content, and/or the same media content can be heard in all rooms synchronously.
Systems and methods for playing back podcasts on a mobile device using a graphical user interface are disclosed.
Features, aspects, and advantages of the presently disclosed technology may be better understood with regard to the following description, appended claims, and accompanying drawings, as listed below. A person skilled in the relevant art will understand that the features shown in the drawings are for purposes of illustrations, and variations, including different and/or additional features and arrangements thereof, are possible.
The drawings are for the purpose of illustrating example embodiments, but those of ordinary skill in the art will understand that the technology disclosed herein is not limited to the arrangements and/or instrumentality shown in the drawings.
Embodiments described herein relate to providing one more playback devices with podcast playback capabilities, including the ability to locate podcast episodes, subscribe to podcasts, and use podcasts in other ways that can be managed and controlled using a mobile device having a graphical user interface.
In some embodiments, for example, a playback system includes a first playback device and a mobile device, the mobile device includes computer-readable medium having stored thereon instructions executable to perform a method including capturing user input selecting an alarm function, capturing user input selecting a time for playing an alarm on the first playback device, capturing user input selecting a podcast channel, updating the graphical user interface to reflect the selected podcast channel, capturing user input specifying what order to play podcast episodes from the selected podcast channel, and starting playback of a first podcast episode on the first playback device according to the specified order to play podcast episodes by the previous user input and the selected time for playing an alarm.
Podcasts are a popular way to consume audio content. Similar to regular music tracks, podcasts are typically audio recordings with certain metadata, such as a time and/or date stamp, where the time and/or date have significance as indicative of when the recording was made. The time and/or date gives a frame of reference for recent each recording is and how they can be put in order. Each podcast recording can be referred to as an episode. Additional metadata can include a summary of the episode. Users who listen to a podcast can subscribe to that podcast. Subscription typically involves being notified of new episodes and/or having a podcast or media player application automatically add a new episode to a playlist or download it. While the source of a series of podcast episodes may be referred to simply as a podcast, it can also be called a podcast station or podcast channel depending on how it is presented to a user. A listener may use a podcast service and/or listen to a particular podcast channel on different playback devices, including mobile devices. In some embodiments, a podcast service is an aggregator or front-end service that provides access to multiple podcast channels, where a podcast channel is from a source or publisher of that podcast. Typically, when using the same user account, playback status (listened-to or not listened-to) and/or playback location (how far the user has listened) of podcast episodes are synchronized across playback devices for a user account. This way, a listener may pick up where they left off. In many embodiments of the invention, a media player application on a mobile device provides a graphical user interface for podcast playback that has elements that are similar to playing back music tracks and also has elements that provide for features that are specific to podcasts.
While some examples described herein may refer to functions performed by given actors such as “users,” “listeners,” and/or other entities, it should be understood that this is for purposes of explanation only. The claims should not be interpreted to require action by any such example actor unless explicitly required by the language of the claims themselves.
In the Figures, identical reference numbers identify generally similar, and/or identical, elements. To facilitate the discussion of any particular element, the most significant digit or digits of a reference number refers to the Figure in which that element is first introduced. For example, element 110a is first introduced and discussed with reference to
As used herein the term “playback device” can generally refer to a network device configured to receive, process, and output data of a media playback system. For example, a playback device can be a network device that receives and processes audio content. In some embodiments, a playback device includes one or more transducers or speakers powered by one or more amplifiers. In other embodiments, however, a playback device includes one of (or neither of) the speaker and the amplifier. For instance, a playback device can comprise one or more amplifiers configured to drive one or more speakers external to the playback device via a corresponding wire or cable.
Moreover, as used herein the term “NMD” (i.e., a “network microphone device”) can generally refer to a network device that is configured for audio detection. In some embodiments, an NMD is a stand-alone device configured primarily for audio detection. In other embodiments, an NMD is incorporated into a playback device (or vice versa).
The term “control device” can generally refer to a network device configured to perform functions relevant to facilitating user access, control, and/or configuration of the media playback system 100.
Each of the playback devices 110 is configured to receive audio signals or data from one or more media sources (e.g., one or more remote servers, one or more local devices) and play back the received audio signals or data as sound. The one or more NMDs 120 are configured to receive spoken word commands, and the one or more control devices 130 are configured to receive user input. In response to the received spoken word commands and/or user input, the media playback system 100 can play back audio via one or more of the playback devices 110. In certain embodiments, the playback devices 110 are configured to commence playback of media content in response to a trigger. For instance, one or more of the playback devices 110 can be configured to play back a morning playlist upon detection of an associated trigger condition (e.g., presence of a user in a kitchen, detection of a coffee machine operation). In some embodiments, for example, the media playback system 100 is configured to play back audio from a first playback device (e.g., the playback device 100a) in synchrony with a second playback device (e.g., the playback device 100b). Interactions between the playback devices 110, NMDs 120, and/or control devices 130 of the media playback system 100 configured in accordance with the various embodiments of the disclosure are described in greater detail below with respect to
In the illustrated embodiment of
The media playback system 100 can comprise one or more playback zones, some of which may correspond to the rooms in the environment 101. The media playback system 100 can be established with one or more playback zones, after which additional zones may be added, or removed, to form, for example, the configuration shown in
In the illustrated embodiment of
In some aspects, one or more of the playback zones in the environment 101 may each be playing different audio content. For instance, a user may be grilling on the patio 101i and listening to hip hop music being played by the playback device 110c while another user is preparing food in the kitchen 101h and listening to classical music played by the playback device 110b. In another example, a playback zone may play the same audio content in synchrony with another playback zone. For instance, the user may be in the office 101e listening to the playback device 110f playing back the same hip hop music being played back by playback device 110c on the patio 101i. In some aspects, the playback devices 110c and 110f play back the hip hop music in synchrony such that the user perceives that the audio content is being played seamlessly (or at least substantially seamlessly) while moving between different playback zones. Additional details regarding audio playback synchronization among playback devices and/or zones can be found, for example, in U.S. Pat. No. 8,234,395 entitled, “System and method for synchronizing operations among a plurality of independently clocked digital data processing devices,” which is incorporated herein by reference in its entirety.
a. Suitable Media Playback System
The links 103 can comprise, for example, one or more wired networks, one or more wireless networks, one or more wide area networks (WAN), one or more local area networks (LAN), one or more personal area networks (PAN), one or more telecommunication networks (e.g., one or more Global System for Mobiles (GSM) networks, Code Division Multiple Access (CDMA) networks, Long-Term Evolution (LTE) networks, 5G communication network networks, and/or other suitable data transmission protocol networks), etc. In many embodiments, a cloud network 102 is configured to deliver media content (e.g., audio content, video content, photographs, social media content) to the media playback system 100 in response to a request transmitted from the media playback system 100 via the links 103. In some embodiments, a cloud network 102 is configured to receive data (e.g., voice input data) from the media playback system 100 and correspondingly transmit commands and/or media content to the media playback system 100.
The cloud network 102 comprises computing devices 106 (identified separately as a first computing device 106a, a second computing device 106b, and a third computing device 106c). The computing devices 106 can comprise individual computers or servers, such as, for example, a media streaming service server storing audio and/or other media content, a voice service server, a social media server, a media playback system control server, etc. In some embodiments, one or more of the computing devices 106 comprise modules of a single computer or server. In certain embodiments, one or more of the computing devices 106 comprise one or more modules, computers, and/or servers. Moreover, while the cloud network 102 is described above in the context of a single cloud network, in some embodiments the cloud network 102 comprises a plurality of cloud networks comprising communicatively coupled computing devices. Furthermore, while the cloud network 102 is shown in
The media playback system 100 is configured to receive media content from the networks 102 via the links 103. The received media content can comprise, for example, a Uniform Resource Identifier (URI) and/or a Uniform Resource Locator (URL). For instance, in some examples, the media playback system 100 can stream, download, or otherwise obtain data from a URI or a URL corresponding to the received media content. A network 104 communicatively couples the links 103 and at least a portion of the devices (e.g., one or more of the playback devices 110, NMDs 120, and/or control devices 130) of the media playback system 100. The network 104 can include, for example, a wireless network (e.g., a WiFi network, a Bluetooth, a Z-Wave network, a ZigBee, and/or other suitable wireless communication protocol network) and/or a wired network (e.g., a network comprising Ethernet, Universal Serial Bus (USB), and/or another suitable wired communication). As those of ordinary skill in the art will appreciate, as used herein, “WiFi” can refer to several different communication protocols including, for example, Institute of Electrical and Electronics Engineers (IEEE) 802.11a, 802.11b, 802.11g, 802.11n, 802.11ac, 802.11ac, 802.11ad, 802.11af, 802.11ah, 802.11ai, 802.11aj, 802.11aq, 802.11ax, 802.11ay, 802.15, etc. transmitted at 2.4 Gigahertz (GHz), 5 GHz, and/or another suitable frequency.
In some embodiments, the network 104 comprises a dedicated communication network that the media playback system 100 uses to transmit messages between individual devices and/or to transmit media content to and from media content sources (e.g., one or more of the computing devices 106). In certain embodiments, the network 104 is configured to be accessible only to devices in the media playback system 100, thereby reducing interference and competition with other household devices. In other embodiments, however, the network 104 comprises an existing household communication network (e.g., a household WiFi network). In some embodiments, the links 103 and the network 104 comprise one or more of the same networks. In some aspects, for example, the links 103 and the network 104 comprise a telecommunication network (e.g., an LTE network, a 5G network). Moreover, in some embodiments, the media playback system 100 is implemented without the network 104, and devices comprising the media playback system 100 can communicate with each other, for example, via one or more direct connections, PANs, telecommunication networks, and/or other suitable communication links. The network 104 may be referred to herein as a “local communication network” to differentiate the network 104 from the cloud network 102 that couples the media playback system 100 to remote devices, such as cloud services.
In some embodiments, audio content sources may be regularly added or removed from the media playback system 100. In some embodiments, for example, the media playback system 100 performs an indexing of media items when one or more media content sources are updated, added to, and/or removed from the media playback system 100. The media playback system 100 can scan identifiable media items in some or all folders and/or directories accessible to the playback devices 110, and generate or update a media content database comprising metadata (e.g., title, artist, album, track length) and other associated information (e.g., URIs, URLs) for each identifiable media item found. In some embodiments, for example, the media content database is stored on one or more of the playback devices 110, network microphone devices 120, and/or control devices 130.
In the illustrated embodiment of
The media playback system 100 includes the NMDs 120a and 120d, each comprising one or more microphones configured to receive voice utterances from a user. In the illustrated embodiment of
In some aspects, for example, the computing device 106c comprises one or more modules and/or servers of a VAS (e.g., a VAS operated by one or more of SONOS®, AMAZON®, GOOGLE® APPLE®, MICROSOFT®). The computing device 106c can receive the voice input data from the NMD 120a via the network 104 and the links 103.
In response to receiving the voice input data, the computing device 106c processes the voice input data (i.e., “Play Hey Jude by The Beatles”), and determines that the processed voice input includes a command to play a song (e.g., “Hey Jude”). In some embodiments, after processing the voice input, the computing device 106c accordingly transmits commands to the media playback system 100 to play back “Hey Jude” by the Beatles from a suitable media service (e.g., via one or more of the computing devices 106) on one or more of the playback devices 110. In other embodiments, the computing device 106c may be configured to interface with media services on behalf of the media playback system 100. In such embodiments, after processing the voice input, instead of the computing device 106c transmitting commands to the media playback system 100 causing the media playback system 100 to retrieve the requested media from a suitable media service, the computing device 106c itself causes a suitable media service to provide the requested media to the media playback system 100 in accordance with the user's voice utterance.
b. Suitable Playback Devices
The playback device 110a, for example, can receive media content (e.g., audio content comprising music and/or other sounds) from a local audio source 105 via the input/output 111 (e.g., a cable, a wire, a PAN, a Bluetooth connection, an ad hoc wired or wireless communication network, and/or another suitable communication link). The local audio source 105 can comprise, for example, a mobile device (e.g., a smartphone, a tablet, a laptop computer) or another suitable audio component (e.g., a television, a desktop computer, an amplifier, a phonograph, a Blu-ray player, a memory storing digital media files). In some aspects, the local audio source 105 includes local music libraries on a smartphone, a computer, a networked-attached storage (NAS), and/or another suitable device configured to store media files. In certain embodiments, one or more of the playback devices 110, NMDs 120, and/or control devices 130 comprise the local audio source 105. In other embodiments, however, the media playback system omits the local audio source 105 altogether. In some embodiments, the playback device 110a does not include an input/output 111 and receives all audio content via the network 104.
The playback device 110a further comprises electronics 112, a user interface 113 (e.g., one or more buttons, knobs, dials, touch-sensitive surfaces, displays, touchscreens), and one or more transducers 114 (referred to hereinafter as “the transducers 114”). The electronics 112 are configured to receive audio from an audio source (e.g., the local audio source 105) via the input/output 111 or one or more of the computing devices 106a-c via the network 104 (
In the illustrated embodiment of
The processors 112a can comprise clock-driven computing component(s) configured to process data, and the memory 112b can comprise a computer-readable medium (e.g., a tangible, non-transitory computer-readable medium loaded with one or more of the software components 112c) configured to store instructions for performing various operations and/or functions. The processors 112a are configured to execute the instructions stored on the memory 112b to perform one or more of the operations. The operations can include, for example, causing the playback device 110a to retrieve audio data from an audio source (e.g., one or more of the computing devices 106a-c (
The processors 112a can be further configured to perform operations causing the playback device 110a to synchronize playback of audio content with another of the one or more playback devices 110. As those of ordinary skill in the art will appreciate, during synchronous playback of audio content on a plurality of playback devices, a listener will preferably be unable to perceive time-delay differences between playback of the audio content by the playback device 110a and the other one or more other playback devices 110. Additional details regarding audio playback synchronization among playback devices can be found, for example, in U.S. Pat. No. 8,234,395, which was incorporated by reference above.
In some embodiments, the memory 112b is further configured to store data associated with the playback device 110a, such as one or more zones and/or zone groups of which the playback device 110a is a member, audio sources accessible to the playback device 110a, and/or a playback queue that the playback device 110a (and/or another of the one or more playback devices) can be associated with. The stored data can comprise one or more state variables that are periodically updated and used to describe a state of the playback device 110a. The memory 112b can also include data associated with a state of one or more of the other devices (e.g., the playback devices 110, NMDs 120, control devices 130) of the media playback system 100. In some aspects, for example, the state data is shared during predetermined intervals of time (e.g., every 5 seconds, every 10 seconds, every 60 seconds) among at least a portion of the devices of the media playback system 100, so that one or more of the devices have the most recent data associated with the media playback system 100.
The network interface 112d is configured to facilitate a transmission of data between the playback device 110a and one or more other devices on a data network such as, for example, the links 103 and/or the network 104 (
In the illustrated embodiment of
The audio components 112g are configured to process and/or filter data comprising media content received by the electronics 112 (e.g., via the input/output 111 and/or the network interface 112d) to produce output audio signals. In some embodiments, the audio processing components 112g comprise, for example, one or more digital-to-analog converters (DAC), audio preprocessing components, audio enhancement components, a digital signal processors (DSPs), and/or other suitable audio processing components, modules, circuits, etc. In certain embodiments, one or more of the audio processing components 112g can comprise one or more subcomponents of the processors 112a. In some embodiments, the electronics 112 omits the audio processing components 112g. In some aspects, for example, the processors 112a execute instructions stored on the memory 112b to perform audio processing operations to produce the output audio signals.
The amplifiers 112h are configured to receive and amplify the audio output signals produced by the audio processing components 112g and/or the processors 112a. The amplifiers 112h can comprise electronic devices and/or components configured to amplify audio signals to levels sufficient for driving one or more of the transducers 114. In some embodiments, for example, the amplifiers 112h include one or more switching or class-D power amplifiers. In other embodiments, however, the amplifiers include one or more other types of power amplifiers (e.g., linear gain power amplifiers, class-A amplifiers, class-B amplifiers, class-AB amplifiers, class-C amplifiers, class-D amplifiers, class-E amplifiers, class-F amplifiers, class-G and/or class H amplifiers, and/or another suitable type of power amplifier). In certain embodiments, the amplifiers 112h comprise a suitable combination of two or more of the foregoing types of power amplifiers. Moreover, in some embodiments, individual ones of the amplifiers 112h correspond to individual ones of the transducers 114. In other embodiments, however, the electronics 112 includes a single one of the amplifiers 112h configured to output amplified audio signals to a plurality of the transducers 114. In some other embodiments, the electronics 112 omits the amplifiers 112h.
The transducers 114 (e.g., one or more speakers and/or speaker drivers) receive the amplified audio signals from the amplifier 112h and render or output the amplified audio signals as sound (e.g., audible sound waves having a frequency between about 20 Hertz (Hz) and 20 kilohertz (kHz)). In some embodiments, the transducers 114 can comprise a single transducer. In other embodiments, however, the transducers 114 comprise a plurality of audio transducers. In some embodiments, the transducers 114 comprise more than one type of transducer. For example, the transducers 114 can include one or more low frequency transducers (e.g., subwoofers, woofers), mid-range frequency transducers (e.g., mid-range transducers, mid-woofers), and one or more high frequency transducers (e.g., one or more tweeters). As used herein, “low frequency” can generally refer to audible frequencies below about 500 Hz, “mid-range frequency” can generally refer to audible frequencies between about 500 Hz and about 2 kHz, and “high frequency” can generally refer to audible frequencies above 2 kHz. In certain embodiments, however, one or more of the transducers 114 comprise transducers that do not adhere to the foregoing frequency ranges. For example, one of the transducers 114 may comprise a mid-woofer transducer configured to output sound at frequencies between about 200 Hz and about 5 kHz.
By way of illustration, SONOS, Inc. presently offers (or has offered) for sale certain playback devices including, for example, a “SONOS ONE,” “PLAY:1,” “PLAY:3,” “PLAY:5,” “PLAYBAR,” “PLAYBASE,” “CONNECT:AMP,” “CONNECT,” and “SUB.” Other suitable playback devices may additionally or alternatively be used to implement the playback devices of example embodiments disclosed herein. Additionally, one of ordinary skilled in the art will appreciate that a playback device is not limited to the examples described herein or to SONOS product offerings. In some embodiments, for example, one or more playback devices 110 comprises wired or wireless headphones (e.g., over-the-ear headphones, on-ear headphones, in-ear earphones). In other embodiments, one or more of the playback devices 110 comprise a docking station and/or an interface configured to interact with a docking station for personal mobile media playback devices. In certain embodiments, a playback device may be integral to another device or component such as a television, a lighting fixture, or some other device for indoor or outdoor use. In some embodiments, a playback device omits a user interface and/or one or more transducers. For example,
c. Suitable Network Microphone Devices (NMDs)
In some embodiments, an NMD can be integrated into a playback device.
Referring again to
After detecting the activation word, voice processing 124 monitors the microphone data for an accompanying user request in the voice input. The user request may include, for example, a command to control a third-party device, such as a thermostat (e.g., NEST® thermostat), an illumination device (e.g., a PHILIPS HUE® lighting device), or a media playback device (e.g., a Sonos® playback device). For example, a user might speak the activation word “Alexa” followed by the utterance “set the thermostat to 68 degrees” to set a temperature in a home (e.g., the environment 101 of
d. Suitable Control Devices
The control device 130a includes electronics 132, a user interface 133, one or more speakers 134, and one or more microphones 135. The electronics 132 comprise one or more processors 132a (referred to hereinafter as “the processors 132a”), a memory 132b, software components 132c, and a network interface 132d. The processor 132a can be configured to perform functions relevant to facilitating user access, control, and configuration of the media playback system 100. The memory 132b can comprise data storage that can be loaded with one or more of the software components executable by the processor 302 to perform those functions. The software components 132c can comprise applications and/or other executable software configured to facilitate control of the media playback system 100. The memory 112b can be configured to store, for example, the software components 132c, media playback system controller application software, and/or other data associated with the media playback system 100 and the user.
The network interface 132d is configured to facilitate network communications between the control device 130a and one or more other devices in the media playback system 100, and/or one or more remote devices. In some embodiments, the network interface 132d is configured to operate according to one or more suitable communication industry standards (e.g., infrared, radio, wired standards including IEEE 802.3, wireless standards including IEEE 802.11a, 802.11b, 802.11g, 802.11n, 802.11ac, 802.15, 4G, LTE). The network interface 132d can be configured, for example, to transmit data to and/or receive data from the playback devices 110, the NMDs 120, other ones of the control devices 130, one of the computing devices 106 of
The user interface 133 is configured to receive user input and can facilitate control of the media playback system 100. The user interface 133 includes media content art 133a (e.g., album art, lyrics, videos), a playback status indicator 133b (e.g., an elapsed and/or remaining time indicator), media content information region 133c, a playback control region 133d, and a zone indicator 133e. The media content information region 133c can include a display of relevant information (e.g., title, artist, album, genre, release year) about media content currently playing and/or media content in a queue or playlist. The playback control region 133d can include selectable (e.g., via touch input and/or via a cursor or another suitable selector) icons to cause one or more playback devices in a selected playback zone or zone group to perform playback actions such as, for example, play or pause, fast forward, rewind, skip to next, skip to previous, enter/exit shuffle mode, enter/exit repeat mode, enter/exit cross fade mode, etc. The playback control region 133d may also include selectable icons to modify equalization settings, playback volume, and/or other suitable playback actions. In the illustrated embodiment, the user interface 133 comprises a display presented on a touch screen interface of a smartphone (e.g., an iPhone™, an Android phone). In some embodiments, however, user interfaces of varying formats, styles, and interactive sequences may alternatively be implemented on one or more network devices to provide comparable control access to a media playback system.
The one or more speakers 134 (e.g., one or more transducers) can be configured to output sound to the user of the control device 130a. In some embodiments, the one or more speakers comprise individual transducers configured to correspondingly output low frequencies, mid-range frequencies, and/or high frequencies. In some aspects, for example, the control device 130a is configured as a playback device (e.g., one of the playback devices 110). Similarly, in some embodiments the control device 130a is configured as an NMD (e.g., one of the NMDs 120), receiving voice commands and other sounds via the one or more microphones 135.
The one or more microphones 135 can comprise, for example, one or more condenser microphones, electret condenser microphones, dynamic microphones, and/or other suitable types of microphones or transducers. In some embodiments, two or more of the microphones 135 are arranged to capture location information of an audio source (e.g., voice, audible sound) and/or configured to facilitate filtering of background noise. Moreover, in certain embodiments, the control device 130a is configured to operate as playback device and an NMD. In other embodiments, however, the control device 130a omits the one or more speakers 134 and/or the one or more microphones 135. For instance, the control device 130a may comprise a device (e.g., a thermostat, an IoT device, a network device) comprising a portion of the electronics 132 and the user interface 133 (e.g., a touch screen) without any speakers or microphones. Additional control device embodiments are described in further detail below with respect to
e. Suitable Playback Device Configurations
Each zone in the media playback system 100 may be provided for control as a single user interface (UI) entity. For example, Zone A may be provided as a single entity named Master Bathroom. Zone B may be provided as a single entity named Master Bedroom. Zone C may be provided as a single entity named Second Bedroom.
Playback devices that are bonded may have different playback responsibilities, such as responsibilities for certain audio channels. For example, as shown in
Additionally, bonded playback devices may have additional and/or different respective speaker drivers. As shown in
Playback devices that are merged may not have assigned playback responsibilities, and may each render the full range of audio content the respective playback device is capable of. Nevertheless, merged devices may be represented as a single UI entity (i.e., a zone, as discussed above). For instance, the playback devices 110a and 110n the master bathroom have the single UI entity of Zone A. In one embodiment, the playback devices 110a and 110n may each output the full range of audio content each respective playback devices 110a and 110n are capable of, in synchrony.
In some embodiments, an NMD is bonded or merged with another device so as to form a zone. For example, the NMD 120b may be bonded with the playback device 110e, which together form Zone F, named Living Room. In other embodiments, a stand-alone network microphone device may be in a zone by itself. In other embodiments, however, a stand-alone network microphone device may not be associated with a zone. Additional details regarding associating network microphone devices and playback devices as designated or default devices may be found, for example, in U.S. Patent Publication No. 2017/0242653 titled “Voice Control of a Media Playback System,” the relevant disclosure of which is hereby incorporated by reference herein in its entirety.
Zones of individual, bonded, and/or merged devices may be grouped to form a zone group. For example, referring to
In various implementations, the zones in an environment may be the default name of a zone within the group or a combination of the names of the zones within a zone group. For example, Zone Group 108b can have be assigned a name such as “Dining+Kitchen”, as shown in
Certain data may be stored in a memory of a playback device (e.g., the memory 112c of
In some embodiments, the memory may store instances of various variable types associated with the states. Variables instances may be stored with identifiers (e.g., tags) corresponding to type. For example, certain identifiers may be a first type “al” to identify playback device(s) of a zone, a second type “b1” to identify playback device(s) that may be bonded in the zone, and a third type “c1” to identify a zone group to which the zone may belong. As a related example, identifiers associated with the second bedroom 101c may indicate that the playback device is the only playback device of the Zone C and not in a zone group. Identifiers associated with the Den may indicate that the Den is not grouped with other zones but includes bonded playback devices 110h-110k. Identifiers associated with the Dining Room may indicate that the Dining Room is part of the Dining+Kitchen zone group 108b and that devices 110b and 110d are grouped (
In yet another example, the media playback system 100 may store variables or identifiers representing other associations of zones and zone groups, such as identifiers associated with Areas, as shown in
The transducers 214 are configured to receive the electrical signals from the electronics 112, and further configured to convert the received electrical signals into audible sound during playback. For instance, the transducers 214a-c (e.g., tweeters) can be configured to output high frequency sound (e.g., sound waves having a frequency greater than about 2 kHz). The transducers 214d-f (e.g., mid-woofers, woofers, midrange speakers) can be configured output sound at frequencies lower than the transducers 214a-c (e.g., sound waves having a frequency lower than about 2 kHz). In some embodiments, the playback device 210 includes a number of transducers different than those illustrated in
In the illustrated embodiment of
Electronics 312 (
Referring to
Referring to
The beamforming and self-sound suppression components 312l and 312m are configured to detect an audio signal and determine aspects of voice input represented in the detected audio signal, such as the direction, amplitude, frequency spectrum, etc. The voice activity detector activity components 312k are operably coupled with the beamforming and AEC components 312l and 312m and are configured to determine a direction and/or directions from which voice activity is likely to have occurred in the detected audio signal. Potential speech directions can be identified by monitoring metrics which distinguish speech from other sounds. Such metrics can include, for example, energy within the speech band relative to background noise and entropy within the speech band, which is measure of spectral structure. As those of ordinary skill in the art will appreciate, speech typically has a lower entropy than most common background noise.
The activation word detector components 312n are configured to monitor and analyze received audio to determine if any activation words (e.g., wake words) are present in the received audio. The activation word detector components 312n may analyze the received audio using an activation word detection algorithm. If the activation word detector 312n detects an activation word, the NMD 320 may process voice input contained in the received audio. Example activation word detection algorithms accept audio as input and provide an indication of whether an activation word is present in the audio. Many first- and third-party activation word detection algorithms are known and commercially available. For instance, operators of a voice service may make their algorithm available for use in third-party devices. Alternatively, an algorithm may be trained to detect certain activation words. In some embodiments, the activation word detector 312n runs multiple activation word detection algorithms on the received audio simultaneously (or substantially simultaneously). As noted above, different voice services (e.g. AMAZON's ALEXA®, APPLE's SIRI®, or MICROSOFT's CORTANA®) can each use a different activation word for invoking their respective voice service. To support multiple services, the activation word detector 312n may run the received audio through the activation word detection algorithm for each supported voice service in parallel.
The speech/text conversion components 312o may facilitate processing by converting speech in the voice input to text. In some embodiments, the electronics 312 can include voice recognition software that is trained to a particular user or a particular set of users associated with a household. Such voice recognition software may implement voice-processing algorithms that are tuned to specific voice profile(s). Tuning to specific voice profiles may require less computationally intensive algorithms than traditional voice activity services, which typically sample from a broad base of users and diverse requests that are not targeted to media playback systems.
The voice utterance portion 328b may include, for example, one or more spoken commands (identified individually as a first command 328c and a second command 328e) and one or more spoken keywords (identified individually as a first keyword 328d and a second keyword 328f). In one example, the first command 328c can be a command to play music, such as a specific song, album, playlist, etc. In this example, the keywords may be one or words identifying one or more zones in which the music is to be played, such as the Living Room and the Dining Room shown in
In some embodiments, the media playback system 100 is configured to temporarily reduce the volume of audio content that it is playing while detecting the activation word portion 557a. The media playback system 100 may restore the volume after processing the voice input 328, as shown in
The playback zone region 533b can include representations of playback zones within the media playback system 100 (
The playback status region 533c includes graphical representations of audio content that is presently being played, previously played, or scheduled to play next in the selected playback zone or zone group. The selected playback zone or zone group may be visually distinguished on the user interface, such as within the playback zone region 533b and/or the playback queue region 533d. The graphical representations may include track title, artist name, album name, album year, track length, and other relevant information that may be useful for the user to know when controlling the media playback system 100 via the user interface 531.
The playback queue region 533d includes graphical representations of audio content in a playback queue associated with the selected playback zone or zone group. In some embodiments, each playback zone or zone group may be associated with a playback queue containing information corresponding to zero or more audio items for playback by the playback zone or zone group. For instance, each audio item in the playback queue may comprise a uniform resource identifier (URI), a uniform resource locator (URL) or some other identifier that may be used by a playback device in the playback zone or zone group to find and/or retrieve the audio item from a local audio content source or a networked audio content source, possibly for playback by the playback device. In some embodiments, for example, a playlist can be added to a playback queue, in which information corresponding to each audio item in the playlist may be added to the playback queue. In some embodiments, audio items in a playback queue may be saved as a playlist. In certain embodiments, a playback queue may be empty, or populated but “not in use” when the playback zone or zone group is playing continuously streaming audio content, such as Internet radio that may continue to play until otherwise stopped, rather than discrete audio items that have playback durations. In some embodiments, a playback queue can include Internet radio and/or other streaming audio content items and be “in use” when the playback zone or zone group is playing those items.
When playback zones or zone groups are “grouped” or “ungrouped,” playback queues associated with the affected playback zones or zone groups may be cleared or re-associated. For example, if a first playback zone including a first playback queue is grouped with a second playback zone including a second playback queue, the established zone group may have an associated playback queue that is initially empty, that contains audio items from the first playback queue (such as if the second playback zone was added to the first playback zone), that contains audio items from the second playback queue (such as if the first playback zone was added to the second playback zone), or a combination of audio items from both the first and second playback queues. Subsequently, if the established zone group is ungrouped, the resulting first playback zone may be re-associated with the previous first playback queue, or be associated with a new playback queue that is empty or contains audio items from the playback queue associated with the established zone group before the established zone group was ungrouped. Similarly, the resulting second playback zone may be re-associated with the previous second playback queue, or be associated with a new playback queue that is empty, or contains audio items from the playback queue associated with the established zone group before the established zone group was ungrouped.
At step 650a, the media playback system 100 receives an indication of selected media content (e.g., one or more songs, albums, playlists, podcasts, videos, stations) via the control device 130a. The selected media content can comprise, for example, media items stored locally on or more devices (e.g., the audio source 105 of
At step 650b, the playback device 110a receives the message 651a and adds the selected media content to the playback queue for play back.
At step 650c, the control device 130a receives input corresponding to a command to play back the selected media content. In response to receiving the input corresponding to the command to play back the selected media content, the control device 130a transmits a message 651b to the playback device 110a causing the playback device 110a to play back the selected media content. In response to receiving the message 651b, the playback device 110a transmits a message 651c to the computing device 106a requesting the selected media content. The computing device 106a, in response to receiving the message 651c, transmits a message 651d comprising data (e.g., audio data, video data, a URL, a URI) corresponding to the requested media content.
At step 650d, the playback device 110a receives the message 651d with the data corresponding to the requested media content and plays back the associated media content.
At step 650e, the playback device 110a optionally causes one or more other devices to play back the selected media content. In one example, the playback device 110a is one of a bonded zone of two or more players (
Mobile devices may be used as playback devices and/or control devices within a playback system or outside of the playback system (e.g., to interact with playback devices or control devices in the playback system). Mobile devices in accordance with several embodiments of the invention include a media player application that is configured to access and play back podcast content on one or more playback devices in a media playback system such as those described further above. The media player application can provide a browser to search for and/or view podcasts, a player screen that shows what content is currently playing, and/or additional functions that are features specific to podcasts (e.g., resuming where playback was left off, subscribing to podcast channels). In several embodiments, playback can be controlled within the media player application by selecting which playback device(s) or groups of playback devices to play back the selected podcast. Available podcasts are typically set up as audio sources within the media player application and associated with a user account. Podcast playback can be synchronized for a user account across playback devices, even those outside of the media playback system, so that information about an episode displays the listener's progress (e.g., a last playback location) through the episode.
In several embodiments, a media player application on a mobile device can display a Podcast Browser View screen that provides information relevant to a particular podcast. Similar to a an album or playlist view that would give information about an album or playlist (e.g., album title, artist, length, etc.), an Podcast Browser View can provide podcast information about a podcast, such as, but not limited to thumbnail (e.g., album art), podcast title, podcast publisher, service attribution, and/or podcast description. It can also list episodes, with associated episode information, such as, but not limited to episode title, episode date, and/or length of episode or time left in episode.
Various components can be shown in a Podcast Browser View.
A Podcast Description Component can provide a text description of the podcast. It can be collapsed shorter to two or three lines with a selectable option “More” to show the full description. An Action Component can provide selectable buttons to take actions such as “Play” and “Subscribe.” Selecting “Play” starts playback of an episode of the podcast. When an episode has been played previously and the last position is saved, the button can display as “Resume” which results in starting playback at the saved position. In different embodiments, playback starts at the most recent episode, the most recent episode not yet played, the earliest episode, or the earliest episode not yet played. In additional embodiments, an option can be set within the media player application for how playback is preferred to start. Selecting “Subscribe” can save the current podcast to a user profile. Additional functions can be enabled with subscribing to a podcast, such as automatically downloading future or all episodes or receiving notifications when new episodes are released.
The Podcast Browser View can also list episodes in an Episode List Component, with associated episode information, such as, but not limited to episode title, episode date, and/or length of episode or time left in episode. Additional elements can be shown in various embodiments of the invention, such as a histogram or animated histogram next to a particular episode while is playing and a pie chart or other type of chart showing progress of how much of an episode has been listened to. In addition, an ellipses or other icon may indicate the ability to select to bring up an option menu. An Episode Filter Component can be used to sort or filter the podcast episodes that are listed. For example, episodes of a certain age or episodes already listened to can be hidden. Similar to the Header Component, an Episode Filter Component may “stick” or “dock” to the top of the view when it is scrolled out of view.
In different embodiments of the invention, a Podcast Browser View show different combinations of the components discussed above. For example, a first combination may be a Title Component and an Episode List Component. A second combination may include a Title Component, a Podcast Description Component, an Action Component, and an Episode List Component. A third combination may include a Title Component, a Podcast Description Component, an Action Component, an Episode Filter Component, and an Episode List Component.
In additional embodiments of the invention, a Podcast Browser List View screen shows an overview of one or more podcast channels that are available, e.g., from a particular podcast service, saved to the user profile of the user, or in a playlist. This view can show information such as, but not limited to, the podcast title of each podcast, podcast publisher, and/or podcast description.
In several views that allow selection of a podcast or podcast episode, such as the Podcast Browser List View screen, making such a selection can pop up (e.g., slide from below) a contextual menu. A screen that may display a contextual menu in accordance with several embodiments of the invention is illustrated in
While a number of screens and screen elements are described above with respect to
More Options Submenu
Streamlined submenus can be important to user experience within a media player interface. Particularly on mobile devices, where the screen may be small or challenging to navigate, the fewer steps that are necessary to navigate to different options can make a big difference in usability. The figures discussed next illustrate options in menus that are particularly relevant to podcasts and podcast playback.
While a number of screens and screen elements are described above with respect to
Podcast Alarms
In many embodiments of the invention, a mobile device or other device using the media player application may allow a user to set a podcast to play as an alarm. Screens illustrating such capabilities are described below with respect to
The selection of the newest episode may configure the alarm to playback the most recent episode regardless of whether another, older episode has completed playback yet. In one case, the newest episode may be played from the beginning each time. In another case, if the newest episode has been partially played back, the alarm will begin playback where playback of the newest episode was previously stopped. This can be synchronized for the particular podcast channel and/or podcast service for the user across playback devices, even playback devices that are not part of the media playback system. Additional lines of text can be provided for selecting past episodes to play for the alarm. In some embodiments, playback can continue with a next older or next newer episode after playing the selected episode. Other examples are also possible.
Other options may also be provided on the menu, but not shown in
While a number of screens and screen elements are described above with respect to
The above discussions relating to playback devices, control devices, playback zone configurations, and media content sources provide only some examples of operating environments within which functions and methods described below may be implemented. Other operating environments and configurations of media playback systems, playback devices, and network devices not explicitly described herein may also be applicable and suitable for implementation of the functions and methods.
The description above discloses, among other things, various example systems, methods, apparatus, and articles of manufacture including, among other components, firmware and/or software executed on hardware. It is understood that such examples are merely illustrative and should not be considered as limiting. For example, it is contemplated that any or all of the firmware, hardware, and/or software aspects or components can be embodied exclusively in hardware, exclusively in software, exclusively in firmware, or in any combination of hardware, software, and/or firmware. Accordingly, the examples provided are not the only ways) to implement such systems, methods, apparatus, and/or articles of manufacture.
Additionally, references herein to “embodiment” means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one example embodiment of an invention. The appearances of this phrase in various places in the specification are not necessarily all referring to the same embodiment, nor are separate or alternative embodiments mutually exclusive of other embodiments. As such, the embodiments described herein, explicitly and implicitly understood by one skilled in the art, can be combined with other embodiments.
The specification is presented largely in terms of illustrative environments, systems, procedures, steps, logic blocks, processing, and other symbolic representations that directly or indirectly resemble the operations of data processing devices coupled to networks. These process descriptions and representations are typically used by those skilled in the art to most effectively convey the substance of their work to others skilled in the art. Numerous specific details are set forth to provide a thorough understanding of the present disclosure. However, it is understood to those skilled in the art that certain embodiments of the present disclosure can be practiced without certain, specific details. In other instances, well known methods, procedures, components, and circuitry have not been described in detail to avoid unnecessarily obscuring aspects of the embodiments. Accordingly, the scope of the present disclosure is defined by the appended claims rather than the foregoing description of embodiments.
When any of the appended claims are read to cover a purely software and/or firmware implementation, at least one of the elements in at least one example is hereby expressly defined to include a tangible, non-transitory medium such as a memory, DVD, CD, Blu-ray, and so on, storing the software and/or firmware.
Number | Name | Date | Kind |
---|---|---|---|
D594468 | Bamford et al. | Jun 2009 | S |
D643437 | Chaudhri | Aug 2011 | S |
8234395 | Millington | Jul 2012 | B2 |
D667836 | Lemay | Sep 2012 | S |
D686234 | Vassigh et al. | Jul 2013 | S |
8483853 | Lambourne | Jul 2013 | B1 |
D710371 | van Os | Aug 2014 | S |
D761291 | Wiesner | Jul 2016 | S |
D774089 | Park et al. | Dec 2016 | S |
D826968 | Varshavskaya et al. | Aug 2018 | S |
D837241 | Dilag et al. | Jan 2019 | S |
D838285 | Zhu et al. | Jan 2019 | S |
D838733 | Grossman et al. | Jan 2019 | S |
D841024 | Clediere et al. | Feb 2019 | S |
D845323 | Clediere et al. | Apr 2019 | S |
D847177 | Ma et al. | Apr 2019 | S |
D847192 | Hu | Apr 2019 | S |
D851104 | Akana et al. | Jun 2019 | S |
D852843 | Dye et al. | Jul 2019 | S |
D858577 | Coffman et al. | Sep 2019 | S |
D863340 | Akana et al. | Oct 2019 | S |
D863341 | Wrzesinski | Oct 2019 | S |
D867383 | Wang et al. | Nov 2019 | S |
D870144 | Mensinger et al. | Dec 2019 | S |
D872110 | Clediere et al. | Jan 2020 | S |
D872766 | Ive et al. | Jan 2020 | S |
D873851 | Reid et al. | Jan 2020 | S |
D874473 | Mu et al. | Feb 2020 | S |
D879131 | Friedland et al. | Mar 2020 | S |
D882594 | Yan | Apr 2020 | S |
D882613 | Zumbrunnen et al. | Apr 2020 | S |
D885426 | Guzman et al. | May 2020 | S |
10694309 | Vautrin et al. | Jun 2020 | B1 |
D896242 | Pitta et al. | Sep 2020 | S |
D898756 | Navasca et al. | Oct 2020 | S |
D902234 | McKently et al. | Nov 2020 | S |
D903703 | Lindberg | Dec 2020 | S |
10891105 | Gates et al. | Jan 2021 | B1 |
D910676 | Wang et al. | Feb 2021 | S |
D922419 | Lynne et al. | Jun 2021 | S |
D923638 | Vautrin et al. | Jun 2021 | S |
D923656 | Gates et al. | Jun 2021 | S |
11086589 | McKently et al. | Aug 2021 | B2 |
D936688 | McKently et al. | Nov 2021 | S |
D946621 | Dye et al. | Mar 2022 | S |
D951977 | Bujnowicz | May 2022 | S |
D962265 | Gates et al. | Aug 2022 | S |
D963685 | Lynne et al. | Sep 2022 | S |
D975126 | Lynne et al. | Jan 2023 | S |
D994694 | McKently et al. | Aug 2023 | S |
20100177598 | Zhang et al. | Jul 2010 | A1 |
20110196826 | Retief | Aug 2011 | A1 |
20150248649 | Avats | Sep 2015 | A1 |
20150371176 | Barrett et al. | Dec 2015 | A1 |
20160275439 | Avats | Sep 2016 | A1 |
20160357509 | Alsina et al. | Dec 2016 | A1 |
20170010587 | Champy et al. | Jan 2017 | A1 |
20170192739 | Gossain et al. | Jul 2017 | A1 |
20170242653 | Lang et al. | Aug 2017 | A1 |
20180107446 | Wilberding et al. | Apr 2018 | A1 |
20180137584 | Carmichael et al. | May 2018 | A1 |
20180293045 | Lambourne et al. | Oct 2018 | A1 |
20180357728 | Huening et al. | Dec 2018 | A1 |
20200257490 | McKently et al. | Aug 2020 | A1 |
Number | Date | Country |
---|---|---|
306168475 | Nov 2020 | CN |
306479672 | Apr 2021 | CN |
006708632-0001 | Aug 2019 | EM |
006708632-0002 | Aug 2019 | EM |
006708632-0003 | Aug 2019 | EM |
006708632-0004 | Aug 2019 | EM |
006708632-0005 | Aug 2019 | EM |
006708632-0006 | Aug 2019 | EM |
006708632-0007 | Aug 2019 | EM |
006708632-0008 | Aug 2019 | EM |
006708632-0009 | Aug 2019 | EM |
006708632-0010 | Aug 2019 | EM |
006708632-0011 | Aug 2019 | EM |
006708632-0012 | Aug 2019 | EM |
006708632-0013 | Aug 2019 | EM |
25188260 | Jun 2014 | JP |
26295026 | Mar 2015 | JP |
27111011 | Apr 2016 | JP |
28151009 | Jan 2017 | JP |
29120817 | Dec 2017 | JP |
29087083 | Jan 2018 | JP |
29096779 | Jan 2018 | JP |
1664297 | Jul 2020 | JP |
1699046 | Oct 2021 | JP |
2017007596 | Jan 2017 | WO |
202016756 | Aug 2020 | WO |
Entry |
---|
International Search Report and Written Opinion for International Application No. PCT/US2020/017778, Search completed May 20, 2020, dated Aug. 4, 2020, 22 Pgs. |
Invitation to Pay Additional Fees and Partial Search Report Received for International Application PCT/US2020/017778, dated May 29, 2020, 17 Pages. |
“Nightstand Central”, Jul. 17, 2018 (Jul. 17, 2018) 9 XP055697038, Retrieved from the Internet: URL:https://web.archive.org/web/20180717184655/http://www.thomashuntington.com/iOS/Nightstand_Central.html [retrieved on May 19, 2020] the whole document. |
Jimmy, “iOS Tip: Make Serialized Podcasts Play in Order—JimmyTech”, Dec. 10, 2015 (Dec. 10, 2015), XP055697177, Retrieved from the Internet: URL:https://jimmytechsupport.com/ios-tip-make-serialized-podcasts-play-in-order/ [retrieved on May 20, 2020] the whole document. |
Lynch, “Wake Up to Any Podcast, Audiobook, or Song with PodAlarm”, Jan. 23, 2018 (Jan. 23, 2018) 9 XP055696921, Retrieved from the Internet: URL:https://www.xda-developers.com/wake-podcast-audiobook-song-podalarm/[retrieved on May 19, 2020] the whole document. |
International Preliminary Report on Patentability for International Application PCT/US2020/017778, Report dated Aug. 10, 2021, dated Aug. 26, 2021, 14 Pgs. |
Dunn, “Sonos One Review: A Better-Sounding Smart Speaker”, Oct. 19, 2017, posted at arstechnica.com, [site visited Apr. 20, 2022]. https://arstechnica.com/gadgets/2017/10/sonos-one-review-a-better-sounding-echo-with-some-holes-left-to-fill, 2 pgs. |
Number | Date | Country | |
---|---|---|---|
20210357176 A1 | Nov 2021 | US |
Number | Date | Country | |
---|---|---|---|
Parent | 16275197 | Feb 2019 | US |
Child | 17386434 | US |