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PER-10 Thus, upon desired positioning of the cutting guide 1900, the second slot 1970 may be positioned over at least a portion of the first cuneiform to facilitate resection of the first cuneiform, while the first slot 1960 may be positioned over at least a portion of the first metatarsal to facilitate resection of the first metatarsal. In one embodiment, the second slot 1970 is positioned near the distal end of the first cuneiform and the first slot 1960 is positioned near the proximal end of the first metatarsal. The first slot 1960 and second slot 1970 together, with the bone engagement surface 1924 overlying the first cuneiform and the first metatarsal, are positioned to guide resection of the first cuneiform and the first metatarsal during a surgical osteotomy for correcting a condition. 209 Added by DJM 2 2022 2/25/22, 12:00 AM
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PER-10 In alternative embodiments, a guide feature may be designed to guide a different type of cutter, such as a drill, mill, or side-cutting burr. In such embodiments, the guide feature may not be a slot, but may instead be a translatable or rotatable cutter retainer that guides translation and/or rotation of the cutter relative to the bone. In certain embodiments, two or more guide features may be replaced by a single guide feature sized to permit a surgeon to resect both a first cuneiform and a first metatarsal using a single cutting guide 1900. 210 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 In one or more examples, the processor 204 sets an orientation mode for a navigation apparatus 220 to a first orientation mode based on the context. Setting an orientation mode may be performed by communicating a determined orientation mode to an I/O interface 210 such that map data pane 102 displays map data using the determined orientation mode. Alternatively, or in addition, setting an orientation mode may be performed by changing how display information is arranged before the display information is provided to the display device 216 by way of the I/O interface 210. 73 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 In one example, the context 400 may be influenced by a destination factor 402. The destination factor 402 is a factor that is based on the type of destination for the route. The degree to which the destination factor 402 defines or influences the context 400 can be predefined based on a set of default destination types. Alternatively, or in addition, the degree to which the destination factor 402 defines or influences the context 400 can be set, determined, or adjusted by a user. In one embodiment, if the destination for the route is a user’s home, a user’s workplace, or the like, the destination factor 402 may have a higher influence than if the destination for the route is of an unknown destination type. In one embodiment, a context for a user’s home may be context associated with a heading up orientation mode. 81 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 As explained above a context is a frame of reference for a navigation along a route by the user. Those of skill in the art will appreciate that a number of factor may be involved in determining a context for the navigation. Figure 4 illustrates just a few examples. 80 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 In addition, not all factors may have the same level of importance or “weight” in defining a context 400. This feature of context may readily facilitate use of machine learning or artificial intelligence algorithms, such as neural networks, in determining either the context 400, a suitable orientation mode, or both. Consequently, in certain embodiments, a navigation apparatus 220 and/or context module 320 may use machine learning and/or artificial intelligence systems to determine the context 400 and/or orientation mode. In certain embodiments, a navigation apparatus 220 and/or context module 320 may use one or more, or any combination of factors to determine a context 400. 79 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 Figure 4 depicts a context and examples of factors that can be used to define a context 400, according to one or more examples of the present disclosure. "Factor" refers to an element or circumstance contributing to a result. (Search "factor" on wordhippo.com. WordHippo, 2022. Web. Accessed 4 Feb. 2022.) Certain factors may be static and not change over time. Other factors may be dynamic and may change over time, as a user travels the route, or based on other circumstances or attributes. This means that the context 400 may be dynamic and may change over time. Thus, a single orientation mode may be appropriate and serve the user best along an entire route. Alternatively, or in addition, an orientation mode originally used at the start of a route may be changed automatically by the navigation apparatus 220, navigation system 300 and/or navigation module 310 as a user navigates the route. 78 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 The set orientation mode module 340 may set an orientation mode for a navigation system, such as navigation system 300, to a first orientation mode (e.g., North Up, Heading Up, Course Up, etc.) based on the context determined by the context module 320. The set orientation mode module 340 may set the orientation mode in a number of ways. In one example, the set orientation mode module 340 may send an orientation mode message 350. The orientation mode message 350 may be a signal, communication, or other instruction that can be understood by another component, module, system, or subsystem of the navigation system 300 such that the user interface 100 presents map data using the orientation mode. Alternatively, or in addition, the set orientation mode module 340 may change a configuration setting or other data value in the navigation system 300 such that the first orientation mode is used to present map data to a user. In certain embodiments, the set orientation mode module 340 may communicate directly with an I/O interface 360 to cause the I/O interface 360 to use the first orientation mode. The I/O interface 360 may be similar to the I/O interface 210. 77 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 The orientation mode module 330 determines an orientation mode for a context. In one embodiment, the orientation mode module 330 determines an orientation mode for the context determined by the context module 320. The orientation mode module 330 may determine the orientation mode in a number of ways. In one example, orientation mode module 330 may retrieve a stored orientation mode associated with a context. The stored orientation mode associated with a context may be stored in a repository such as a file or a database. The repository may reside within the navigation system 300 or may reside separate from the navigation system 300. 76 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 The context module 320 determines a context for a route to be navigated by a user. The context module 320 may evaluate a number of factors to determine the context. In certain embodiments, the context may be predefined and/or may be set by the user of the navigation system 300. In another embodiment, the context may be a default context predefined to serve as the context if no other factors indicate that another context should be associated with the route and/or the user. 75 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 Figure 3 is a schematic block diagram depicting a navigation system 300 for setting an orientation mode, according to one or more examples of the present disclosure. In one embodiment, the navigation system 300 includes a navigation module 310. The navigation module 310 may include a context module 320, an orientation mode module 330, and a set orientation mode module 340. 74 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 In one example, the context 400 may be influenced by a weather factor 404. The weather factor 404 is a factor that is based on the type of weather experienced by a user along the route. The degree to which the weather factor 404 defines or influences the context 400 can be predefined based on a set of default weather types. Alternatively, or in addition, the degree to which the weather factor 404 defines or influences the context 400 can be set, determined, or adjusted by a user. In one embodiment, if the type of weather experienced by a user along the route is rainy, snowing, or high winds, the weather factor 404 may have a higher influence than if the weather is sunny and warm as a user travels along the route. In one embodiment, an orientation mode for a context having rainy, snowing, or high winds for a particular user may be heading up orientation mode because the user may navigate more accurately and quickly using heading up orientation mode and can get to the destination more quickly. 82 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 In one or more examples, the processor 204 determines an orientation mode for the context. Determining an orientation mode may be performed by retrieving a predefined orientation mode from storage 214 based on a context. Alternatively, or in addition, determining an orientation mode may be performed by operating a machine learning or artificial intelligence module and/or a neural network that includes inputs derived from a context for a navigation. 72 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 "Context" refers to a frame of reference for an event, activity, statement, state, condition, action, and/or idea, and identifiable by a set of factors, conditions, and/or attributes that together can uniquely distinguish this event, activity, statement, state, condition, action, and/or idea from another. (Search "context" on wordhippo.com. WordHippo, 2022. Web. Accessed 3 Feb. 2022. Modified.) Often a context is defined by one or more factors, conditions, and/or attributes of the user or related to the user. 71 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 In various examples, the memory 206 stores code executable by the processor 204 to set an orientation mode for a navigation system, navigation module, and/or navigation apparatus such as navigation apparatus 220. In various example implementations, the apparatus 200 sets an orientation mode using the processor 204 and the memory 206 which stores code that is executable by the processor to determine a context for a route to be navigated by a user. For example, in certain examples, the processor 204 may determine the context using data stored in the storage 214 and/or data provided by one or more sensors 212. In examples, the processor 204 may determine the context based on one or more factors that define the context. Determining the context may be performed by retrieving a data about context factors from storage 214 and/or from sensors 212. Alternatively, or in addition, determining the context may be performed by operating a machine learning or artificial intelligence module and/or a neural network that includes inputs that identify factors that define a context for a navigation. 70 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 The apparatus 200 may include a navigation apparatus 220. The navigation apparatus 220 may take the form of a navigation system, a navigation module, a navigation circuit, navigation software, navigation firmware, or the like. The navigation apparatus 220 manages the navigation features of the apparatus 200 and outputs navigation information (e.g., map data) to a user. 69 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 The storage 214 may include one or more non-volatile storage devices that can store data for the apparatus 200. For example, the storage 214 may store map data, navigation data, position data, route data, user profile data, user preference data, and the like. "Non-volatile storage media" refers to any hardware, device, component, element, or circuit configured to maintain an alterable physical characteristic (deleted) used to represent a binary value of zero or one after a primary power source is removed. Non-volatile storage media may be used interchangeably herein with the term non-volatile memory media. 68 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 The apparatus 200 may include one or more sensors 212. Or, the apparatus 200 may use the communication interface 208 to communicate with one or more sensors separate from the apparatus 200. 67 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 In certain embodiments, a single sensor may detect, sense, and/or measure a single attribute, feature, or characteristic. In other embodiments, a single sensor may detect, sense, and/or measure a plurality of attributes, features, and/or characteristics. A sensor can be made up of analog, digital, electrical, mechanical, and/or electromechanical components and may function with or without an external power source. A sensor can employ a variety of technologies in order to detect, sense, and/or measure an attribute, feature, or characteristic. For example, certain sensors may use electronic signals, radio signals, electromagnetic signals, magnetic signals, light signals, sound signals, and the like. Certain sensors may include a receiver and/or a transmitter of signals or waves for performing the sensing feature. Often a sensor is configured to communicate information about a detected, sensed, and/or measured an attribute, feature, or characteristic to another electronic component or device. The information may be communicated using a wired connection or a wireless connection. 66 Added by DJM 2 2022 2/25/22, 12:00 AM
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KBR-1 1400.2.623 In various examples, the sensors 212 gather information about the environment in which the apparatus 200 operates. The apparatus 200, in certain examples, may not use sensors 212. In other examples, the apparatus 200 may use sensors 212 to determine changes in a context during navigation along a route. As used herein, a "sensor" refers to a device, component, circuit, system, chip, hardware, logic, or circuitry configured to detect, sense, and/or measure an attribute, feature, or characteristic of an environment, a space, a thing, an apparatus, a circuit, a component, and/or the like. Examples of a sensor include but are not limited to a speedometer, an accelerometer, a goniometer, a digital goniometer, a tiltmeter, an inclinometer, a potentiometer, a geomagnetic sensor, an acoustic sensor, a dynamic acceleration sensor, a dynamic acceleration sensor, a gyroscope, a temperature sensor, global positioning system, and the like. 65 Added by DJM 2 2022 2/25/22, 12:00 AM

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